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travel-assistant-bot
/
.venv
/
Lib
/
site-packages
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pip
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_vendor
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resolvelib
RSK World
travel-assistant-bot
Travel Assistant Bot - Python + Flask + OpenAI API + Travel Bot + Flight Search + Hotel Booking + Weather
resolvelib
  • __pycache__
  • compat
  • __init__.py537 B
  • providers.py5.7 KB
  • py.typed0 B
  • reporters.py1.6 KB
  • resolvers.py20 KB
  • structs.py4.8 KB
bindings.py_fileno.pyresolvers.py
.venv/Lib/site-packages/pip/_vendor/urllib3/contrib/_securetransport/bindings.py
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"""
This module uses ctypes to bind a whole bunch of functions and constants from
SecureTransport. The goal here is to provide the low-level API to
SecureTransport. These are essentially the C-level functions and constants, and
they're pretty gross to work with.

This code is a bastardised version of the code found in Will Bond's oscrypto
library. An enormous debt is owed to him for blazing this trail for us. For
that reason, this code should be considered to be covered both by urllib3's
license and by oscrypto's:

    Copyright (c) 2015-2016 Will Bond <will@wbond.net>

    Permission is hereby granted, free of charge, to any person obtaining a
    copy of this software and associated documentation files (the "Software"),
    to deal in the Software without restriction, including without limitation
    the rights to use, copy, modify, merge, publish, distribute, sublicense,
    and/or sell copies of the Software, and to permit persons to whom the
    Software is furnished to do so, subject to the following conditions:

    The above copyright notice and this permission notice shall be included in
    all copies or substantial portions of the Software.

    THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
    IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
    FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
    AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
    LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
    FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
    DEALINGS IN THE SOFTWARE.
"""
from __future__ import absolute_import

import platform
from ctypes import (
    CDLL,
    CFUNCTYPE,
    POINTER,
    c_bool,
    c_byte,
    c_char_p,
    c_int32,
    c_long,
    c_size_t,
    c_uint32,
    c_ulong,
    c_void_p,
)
from ctypes.util import find_library

from ...packages.six import raise_from

if platform.system() != "Darwin":
    raise ImportError("Only macOS is supported")

version = platform.mac_ver()[0]
version_info = tuple(map(int, version.split(".")))
if version_info < (10, 8):
    raise OSError(
        "Only OS X 10.8 and newer are supported, not %s.%s"
        % (version_info[0], version_info[1])
    )


def load_cdll(name, macos10_16_path):
    """Loads a CDLL by name, falling back to known path on 10.16+"""
    try:
        # Big Sur is technically 11 but we use 10.16 due to the Big Sur
        # beta being labeled as 10.16.
        if version_info >= (10, 16):
            path = macos10_16_path
        else:
            path = find_library(name)
        if not path:
            raise OSError  # Caught and reraised as 'ImportError'
        return CDLL(path, use_errno=True)
    except OSError:
        raise_from(ImportError("The library %s failed to load" % name), None)


Security = load_cdll(
    "Security", "/System/Library/Frameworks/Security.framework/Security"
)
CoreFoundation = load_cdll(
    "CoreFoundation",
    "/System/Library/Frameworks/CoreFoundation.framework/CoreFoundation",
)


Boolean = c_bool
CFIndex = c_long
CFStringEncoding = c_uint32
CFData = c_void_p
CFString = c_void_p
CFArray = c_void_p
CFMutableArray = c_void_p
CFDictionary = c_void_p
CFError = c_void_p
CFType = c_void_p
CFTypeID = c_ulong

CFTypeRef = POINTER(CFType)
CFAllocatorRef = c_void_p

OSStatus = c_int32

CFDataRef = POINTER(CFData)
CFStringRef = POINTER(CFString)
CFArrayRef = POINTER(CFArray)
CFMutableArrayRef = POINTER(CFMutableArray)
CFDictionaryRef = POINTER(CFDictionary)
CFArrayCallBacks = c_void_p
CFDictionaryKeyCallBacks = c_void_p
CFDictionaryValueCallBacks = c_void_p

SecCertificateRef = POINTER(c_void_p)
SecExternalFormat = c_uint32
SecExternalItemType = c_uint32
SecIdentityRef = POINTER(c_void_p)
SecItemImportExportFlags = c_uint32
SecItemImportExportKeyParameters = c_void_p
SecKeychainRef = POINTER(c_void_p)
SSLProtocol = c_uint32
SSLCipherSuite = c_uint32
SSLContextRef = POINTER(c_void_p)
SecTrustRef = POINTER(c_void_p)
SSLConnectionRef = c_uint32
SecTrustResultType = c_uint32
SecTrustOptionFlags = c_uint32
SSLProtocolSide = c_uint32
SSLConnectionType = c_uint32
SSLSessionOption = c_uint32


try:
    Security.SecItemImport.argtypes = [
        CFDataRef,
        CFStringRef,
        POINTER(SecExternalFormat),
        POINTER(SecExternalItemType),
        SecItemImportExportFlags,
        POINTER(SecItemImportExportKeyParameters),
        SecKeychainRef,
        POINTER(CFArrayRef),
    ]
    Security.SecItemImport.restype = OSStatus

    Security.SecCertificateGetTypeID.argtypes = []
    Security.SecCertificateGetTypeID.restype = CFTypeID

    Security.SecIdentityGetTypeID.argtypes = []
    Security.SecIdentityGetTypeID.restype = CFTypeID

    Security.SecKeyGetTypeID.argtypes = []
    Security.SecKeyGetTypeID.restype = CFTypeID

    Security.SecCertificateCreateWithData.argtypes = [CFAllocatorRef, CFDataRef]
    Security.SecCertificateCreateWithData.restype = SecCertificateRef

    Security.SecCertificateCopyData.argtypes = [SecCertificateRef]
    Security.SecCertificateCopyData.restype = CFDataRef

    Security.SecCopyErrorMessageString.argtypes = [OSStatus, c_void_p]
    Security.SecCopyErrorMessageString.restype = CFStringRef

    Security.SecIdentityCreateWithCertificate.argtypes = [
        CFTypeRef,
        SecCertificateRef,
        POINTER(SecIdentityRef),
    ]
    Security.SecIdentityCreateWithCertificate.restype = OSStatus

    Security.SecKeychainCreate.argtypes = [
        c_char_p,
        c_uint32,
        c_void_p,
        Boolean,
        c_void_p,
        POINTER(SecKeychainRef),
    ]
    Security.SecKeychainCreate.restype = OSStatus

    Security.SecKeychainDelete.argtypes = [SecKeychainRef]
    Security.SecKeychainDelete.restype = OSStatus

    Security.SecPKCS12Import.argtypes = [
        CFDataRef,
        CFDictionaryRef,
        POINTER(CFArrayRef),
    ]
    Security.SecPKCS12Import.restype = OSStatus

    SSLReadFunc = CFUNCTYPE(OSStatus, SSLConnectionRef, c_void_p, POINTER(c_size_t))
    SSLWriteFunc = CFUNCTYPE(
        OSStatus, SSLConnectionRef, POINTER(c_byte), POINTER(c_size_t)
    )

    Security.SSLSetIOFuncs.argtypes = [SSLContextRef, SSLReadFunc, SSLWriteFunc]
    Security.SSLSetIOFuncs.restype = OSStatus

    Security.SSLSetPeerID.argtypes = [SSLContextRef, c_char_p, c_size_t]
    Security.SSLSetPeerID.restype = OSStatus

    Security.SSLSetCertificate.argtypes = [SSLContextRef, CFArrayRef]
    Security.SSLSetCertificate.restype = OSStatus

    Security.SSLSetCertificateAuthorities.argtypes = [SSLContextRef, CFTypeRef, Boolean]
    Security.SSLSetCertificateAuthorities.restype = OSStatus

    Security.SSLSetConnection.argtypes = [SSLContextRef, SSLConnectionRef]
    Security.SSLSetConnection.restype = OSStatus

    Security.SSLSetPeerDomainName.argtypes = [SSLContextRef, c_char_p, c_size_t]
    Security.SSLSetPeerDomainName.restype = OSStatus

    Security.SSLHandshake.argtypes = [SSLContextRef]
    Security.SSLHandshake.restype = OSStatus

    Security.SSLRead.argtypes = [SSLContextRef, c_char_p, c_size_t, POINTER(c_size_t)]
    Security.SSLRead.restype = OSStatus

    Security.SSLWrite.argtypes = [SSLContextRef, c_char_p, c_size_t, POINTER(c_size_t)]
    Security.SSLWrite.restype = OSStatus

    Security.SSLClose.argtypes = [SSLContextRef]
    Security.SSLClose.restype = OSStatus

    Security.SSLGetNumberSupportedCiphers.argtypes = [SSLContextRef, POINTER(c_size_t)]
    Security.SSLGetNumberSupportedCiphers.restype = OSStatus

    Security.SSLGetSupportedCiphers.argtypes = [
        SSLContextRef,
        POINTER(SSLCipherSuite),
        POINTER(c_size_t),
    ]
    Security.SSLGetSupportedCiphers.restype = OSStatus

    Security.SSLSetEnabledCiphers.argtypes = [
        SSLContextRef,
        POINTER(SSLCipherSuite),
        c_size_t,
    ]
    Security.SSLSetEnabledCiphers.restype = OSStatus

    Security.SSLGetNumberEnabledCiphers.argtype = [SSLContextRef, POINTER(c_size_t)]
    Security.SSLGetNumberEnabledCiphers.restype = OSStatus

    Security.SSLGetEnabledCiphers.argtypes = [
        SSLContextRef,
        POINTER(SSLCipherSuite),
        POINTER(c_size_t),
    ]
    Security.SSLGetEnabledCiphers.restype = OSStatus

    Security.SSLGetNegotiatedCipher.argtypes = [SSLContextRef, POINTER(SSLCipherSuite)]
    Security.SSLGetNegotiatedCipher.restype = OSStatus

    Security.SSLGetNegotiatedProtocolVersion.argtypes = [
        SSLContextRef,
        POINTER(SSLProtocol),
    ]
    Security.SSLGetNegotiatedProtocolVersion.restype = OSStatus

    Security.SSLCopyPeerTrust.argtypes = [SSLContextRef, POINTER(SecTrustRef)]
    Security.SSLCopyPeerTrust.restype = OSStatus

    Security.SecTrustSetAnchorCertificates.argtypes = [SecTrustRef, CFArrayRef]
    Security.SecTrustSetAnchorCertificates.restype = OSStatus

    Security.SecTrustSetAnchorCertificatesOnly.argstypes = [SecTrustRef, Boolean]
    Security.SecTrustSetAnchorCertificatesOnly.restype = OSStatus

    Security.SecTrustEvaluate.argtypes = [SecTrustRef, POINTER(SecTrustResultType)]
    Security.SecTrustEvaluate.restype = OSStatus

    Security.SecTrustGetCertificateCount.argtypes = [SecTrustRef]
    Security.SecTrustGetCertificateCount.restype = CFIndex

    Security.SecTrustGetCertificateAtIndex.argtypes = [SecTrustRef, CFIndex]
    Security.SecTrustGetCertificateAtIndex.restype = SecCertificateRef

    Security.SSLCreateContext.argtypes = [
        CFAllocatorRef,
        SSLProtocolSide,
        SSLConnectionType,
    ]
    Security.SSLCreateContext.restype = SSLContextRef

    Security.SSLSetSessionOption.argtypes = [SSLContextRef, SSLSessionOption, Boolean]
    Security.SSLSetSessionOption.restype = OSStatus

    Security.SSLSetProtocolVersionMin.argtypes = [SSLContextRef, SSLProtocol]
    Security.SSLSetProtocolVersionMin.restype = OSStatus

    Security.SSLSetProtocolVersionMax.argtypes = [SSLContextRef, SSLProtocol]
    Security.SSLSetProtocolVersionMax.restype = OSStatus

    try:
        Security.SSLSetALPNProtocols.argtypes = [SSLContextRef, CFArrayRef]
        Security.SSLSetALPNProtocols.restype = OSStatus
    except AttributeError:
        # Supported only in 10.12+
        pass

    Security.SecCopyErrorMessageString.argtypes = [OSStatus, c_void_p]
    Security.SecCopyErrorMessageString.restype = CFStringRef

    Security.SSLReadFunc = SSLReadFunc
    Security.SSLWriteFunc = SSLWriteFunc
    Security.SSLContextRef = SSLContextRef
    Security.SSLProtocol = SSLProtocol
    Security.SSLCipherSuite = SSLCipherSuite
    Security.SecIdentityRef = SecIdentityRef
    Security.SecKeychainRef = SecKeychainRef
    Security.SecTrustRef = SecTrustRef
    Security.SecTrustResultType = SecTrustResultType
    Security.SecExternalFormat = SecExternalFormat
    Security.OSStatus = OSStatus

    Security.kSecImportExportPassphrase = CFStringRef.in_dll(
        Security, "kSecImportExportPassphrase"
    )
    Security.kSecImportItemIdentity = CFStringRef.in_dll(
        Security, "kSecImportItemIdentity"
    )

    # CoreFoundation time!
    CoreFoundation.CFRetain.argtypes = [CFTypeRef]
    CoreFoundation.CFRetain.restype = CFTypeRef

    CoreFoundation.CFRelease.argtypes = [CFTypeRef]
    CoreFoundation.CFRelease.restype = None

    CoreFoundation.CFGetTypeID.argtypes = [CFTypeRef]
    CoreFoundation.CFGetTypeID.restype = CFTypeID

    CoreFoundation.CFStringCreateWithCString.argtypes = [
        CFAllocatorRef,
        c_char_p,
        CFStringEncoding,
    ]
    CoreFoundation.CFStringCreateWithCString.restype = CFStringRef

    CoreFoundation.CFStringGetCStringPtr.argtypes = [CFStringRef, CFStringEncoding]
    CoreFoundation.CFStringGetCStringPtr.restype = c_char_p

    CoreFoundation.CFStringGetCString.argtypes = [
        CFStringRef,
        c_char_p,
        CFIndex,
        CFStringEncoding,
    ]
    CoreFoundation.CFStringGetCString.restype = c_bool

    CoreFoundation.CFDataCreate.argtypes = [CFAllocatorRef, c_char_p, CFIndex]
    CoreFoundation.CFDataCreate.restype = CFDataRef

    CoreFoundation.CFDataGetLength.argtypes = [CFDataRef]
    CoreFoundation.CFDataGetLength.restype = CFIndex

    CoreFoundation.CFDataGetBytePtr.argtypes = [CFDataRef]
    CoreFoundation.CFDataGetBytePtr.restype = c_void_p

    CoreFoundation.CFDictionaryCreate.argtypes = [
        CFAllocatorRef,
        POINTER(CFTypeRef),
        POINTER(CFTypeRef),
        CFIndex,
        CFDictionaryKeyCallBacks,
        CFDictionaryValueCallBacks,
    ]
    CoreFoundation.CFDictionaryCreate.restype = CFDictionaryRef

    CoreFoundation.CFDictionaryGetValue.argtypes = [CFDictionaryRef, CFTypeRef]
    CoreFoundation.CFDictionaryGetValue.restype = CFTypeRef

    CoreFoundation.CFArrayCreate.argtypes = [
        CFAllocatorRef,
        POINTER(CFTypeRef),
        CFIndex,
        CFArrayCallBacks,
    ]
    CoreFoundation.CFArrayCreate.restype = CFArrayRef

    CoreFoundation.CFArrayCreateMutable.argtypes = [
        CFAllocatorRef,
        CFIndex,
        CFArrayCallBacks,
    ]
    CoreFoundation.CFArrayCreateMutable.restype = CFMutableArrayRef

    CoreFoundation.CFArrayAppendValue.argtypes = [CFMutableArrayRef, c_void_p]
    CoreFoundation.CFArrayAppendValue.restype = None

    CoreFoundation.CFArrayGetCount.argtypes = [CFArrayRef]
    CoreFoundation.CFArrayGetCount.restype = CFIndex

    CoreFoundation.CFArrayGetValueAtIndex.argtypes = [CFArrayRef, CFIndex]
    CoreFoundation.CFArrayGetValueAtIndex.restype = c_void_p

    CoreFoundation.kCFAllocatorDefault = CFAllocatorRef.in_dll(
        CoreFoundation, "kCFAllocatorDefault"
    )
    CoreFoundation.kCFTypeArrayCallBacks = c_void_p.in_dll(
        CoreFoundation, "kCFTypeArrayCallBacks"
    )
    CoreFoundation.kCFTypeDictionaryKeyCallBacks = c_void_p.in_dll(
        CoreFoundation, "kCFTypeDictionaryKeyCallBacks"
    )
    CoreFoundation.kCFTypeDictionaryValueCallBacks = c_void_p.in_dll(
        CoreFoundation, "kCFTypeDictionaryValueCallBacks"
    )

    CoreFoundation.CFTypeRef = CFTypeRef
    CoreFoundation.CFArrayRef = CFArrayRef
    CoreFoundation.CFStringRef = CFStringRef
    CoreFoundation.CFDictionaryRef = CFDictionaryRef

except (AttributeError):
    raise ImportError("Error initializing ctypes")


class CFConst(object):
    """
    A class object that acts as essentially a namespace for CoreFoundation
    constants.
    """

    kCFStringEncodingUTF8 = CFStringEncoding(0x08000100)


class SecurityConst(object):
    """
    A class object that acts as essentially a namespace for Security constants.
    """

    kSSLSessionOptionBreakOnServerAuth = 0

    kSSLProtocol2 = 1
    kSSLProtocol3 = 2
    kTLSProtocol1 = 4
    kTLSProtocol11 = 7
    kTLSProtocol12 = 8
    # SecureTransport does not support TLS 1.3 even if there's a constant for it
    kTLSProtocol13 = 10
    kTLSProtocolMaxSupported = 999

    kSSLClientSide = 1
    kSSLStreamType = 0

    kSecFormatPEMSequence = 10

    kSecTrustResultInvalid = 0
    kSecTrustResultProceed = 1
    # This gap is present on purpose: this was kSecTrustResultConfirm, which
    # is deprecated.
    kSecTrustResultDeny = 3
    kSecTrustResultUnspecified = 4
    kSecTrustResultRecoverableTrustFailure = 5
    kSecTrustResultFatalTrustFailure = 6
    kSecTrustResultOtherError = 7

    errSSLProtocol = -9800
    errSSLWouldBlock = -9803
    errSSLClosedGraceful = -9805
    errSSLClosedNoNotify = -9816
    errSSLClosedAbort = -9806

    errSSLXCertChainInvalid = -9807
    errSSLCrypto = -9809
    errSSLInternal = -9810
    errSSLCertExpired = -9814
    errSSLCertNotYetValid = -9815
    errSSLUnknownRootCert = -9812
    errSSLNoRootCert = -9813
    errSSLHostNameMismatch = -9843
    errSSLPeerHandshakeFail = -9824
    errSSLPeerUserCancelled = -9839
    errSSLWeakPeerEphemeralDHKey = -9850
    errSSLServerAuthCompleted = -9841
    errSSLRecordOverflow = -9847

    errSecVerifyFailed = -67808
    errSecNoTrustSettings = -25263
    errSecItemNotFound = -25300
    errSecInvalidTrustSettings = -25262

    # Cipher suites. We only pick the ones our default cipher string allows.
    # Source: https://developer.apple.com/documentation/security/1550981-ssl_cipher_suite_values
    TLS_ECDHE_ECDSA_WITH_AES_256_GCM_SHA384 = 0xC02C
    TLS_ECDHE_RSA_WITH_AES_256_GCM_SHA384 = 0xC030
    TLS_ECDHE_ECDSA_WITH_AES_128_GCM_SHA256 = 0xC02B
    TLS_ECDHE_RSA_WITH_AES_128_GCM_SHA256 = 0xC02F
    TLS_ECDHE_ECDSA_WITH_CHACHA20_POLY1305_SHA256 = 0xCCA9
    TLS_ECDHE_RSA_WITH_CHACHA20_POLY1305_SHA256 = 0xCCA8
    TLS_DHE_RSA_WITH_AES_256_GCM_SHA384 = 0x009F
    TLS_DHE_RSA_WITH_AES_128_GCM_SHA256 = 0x009E
    TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA384 = 0xC024
    TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA384 = 0xC028
    TLS_ECDHE_ECDSA_WITH_AES_256_CBC_SHA = 0xC00A
    TLS_ECDHE_RSA_WITH_AES_256_CBC_SHA = 0xC014
    TLS_DHE_RSA_WITH_AES_256_CBC_SHA256 = 0x006B
    TLS_DHE_RSA_WITH_AES_256_CBC_SHA = 0x0039
    TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA256 = 0xC023
    TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA256 = 0xC027
    TLS_ECDHE_ECDSA_WITH_AES_128_CBC_SHA = 0xC009
    TLS_ECDHE_RSA_WITH_AES_128_CBC_SHA = 0xC013
    TLS_DHE_RSA_WITH_AES_128_CBC_SHA256 = 0x0067
    TLS_DHE_RSA_WITH_AES_128_CBC_SHA = 0x0033
    TLS_RSA_WITH_AES_256_GCM_SHA384 = 0x009D
    TLS_RSA_WITH_AES_128_GCM_SHA256 = 0x009C
    TLS_RSA_WITH_AES_256_CBC_SHA256 = 0x003D
    TLS_RSA_WITH_AES_128_CBC_SHA256 = 0x003C
    TLS_RSA_WITH_AES_256_CBC_SHA = 0x0035
    TLS_RSA_WITH_AES_128_CBC_SHA = 0x002F
    TLS_AES_128_GCM_SHA256 = 0x1301
    TLS_AES_256_GCM_SHA384 = 0x1302
    TLS_AES_128_CCM_8_SHA256 = 0x1305
    TLS_AES_128_CCM_SHA256 = 0x1304
520 lines•17.2 KB
python
.venv/Lib/site-packages/pip/_vendor/rich/_fileno.py
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from __future__ import annotations

from typing import IO, Callable


def get_fileno(file_like: IO[str]) -> int | None:
    """Get fileno() from a file, accounting for poorly implemented file-like objects.

    Args:
        file_like (IO): A file-like object.

    Returns:
        int | None: The result of fileno if available, or None if operation failed.
    """
    fileno: Callable[[], int] | None = getattr(file_like, "fileno", None)
    if fileno is not None:
        try:
            return fileno()
        except Exception:
            # `fileno` is documented as potentially raising a OSError
            # Alas, from the issues, there are so many poorly implemented file-like objects,
            # that `fileno()` can raise just about anything.
            return None
    return None
25 lines•799 B
python
.venv/Lib/site-packages/pip/_vendor/resolvelib/resolvers.py
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import collections
import itertools
import operator

from .providers import AbstractResolver
from .structs import DirectedGraph, IteratorMapping, build_iter_view

RequirementInformation = collections.namedtuple(
    "RequirementInformation", ["requirement", "parent"]
)


class ResolverException(Exception):
    """A base class for all exceptions raised by this module.

    Exceptions derived by this class should all be handled in this module. Any
    bubbling pass the resolver should be treated as a bug.
    """


class RequirementsConflicted(ResolverException):
    def __init__(self, criterion):
        super(RequirementsConflicted, self).__init__(criterion)
        self.criterion = criterion

    def __str__(self):
        return "Requirements conflict: {}".format(
            ", ".join(repr(r) for r in self.criterion.iter_requirement()),
        )


class InconsistentCandidate(ResolverException):
    def __init__(self, candidate, criterion):
        super(InconsistentCandidate, self).__init__(candidate, criterion)
        self.candidate = candidate
        self.criterion = criterion

    def __str__(self):
        return "Provided candidate {!r} does not satisfy {}".format(
            self.candidate,
            ", ".join(repr(r) for r in self.criterion.iter_requirement()),
        )


class Criterion(object):
    """Representation of possible resolution results of a package.

    This holds three attributes:

    * `information` is a collection of `RequirementInformation` pairs.
      Each pair is a requirement contributing to this criterion, and the
      candidate that provides the requirement.
    * `incompatibilities` is a collection of all known not-to-work candidates
      to exclude from consideration.
    * `candidates` is a collection containing all possible candidates deducted
      from the union of contributing requirements and known incompatibilities.
      It should never be empty, except when the criterion is an attribute of a
      raised `RequirementsConflicted` (in which case it is always empty).

    .. note::
        This class is intended to be externally immutable. **Do not** mutate
        any of its attribute containers.
    """

    def __init__(self, candidates, information, incompatibilities):
        self.candidates = candidates
        self.information = information
        self.incompatibilities = incompatibilities

    def __repr__(self):
        requirements = ", ".join(
            "({!r}, via={!r})".format(req, parent)
            for req, parent in self.information
        )
        return "Criterion({})".format(requirements)

    def iter_requirement(self):
        return (i.requirement for i in self.information)

    def iter_parent(self):
        return (i.parent for i in self.information)


class ResolutionError(ResolverException):
    pass


class ResolutionImpossible(ResolutionError):
    def __init__(self, causes):
        super(ResolutionImpossible, self).__init__(causes)
        # causes is a list of RequirementInformation objects
        self.causes = causes


class ResolutionTooDeep(ResolutionError):
    def __init__(self, round_count):
        super(ResolutionTooDeep, self).__init__(round_count)
        self.round_count = round_count


# Resolution state in a round.
State = collections.namedtuple("State", "mapping criteria backtrack_causes")


class Resolution(object):
    """Stateful resolution object.

    This is designed as a one-off object that holds information to kick start
    the resolution process, and holds the results afterwards.
    """

    def __init__(self, provider, reporter):
        self._p = provider
        self._r = reporter
        self._states = []

    @property
    def state(self):
        try:
            return self._states[-1]
        except IndexError:
            raise AttributeError("state")

    def _push_new_state(self):
        """Push a new state into history.

        This new state will be used to hold resolution results of the next
        coming round.
        """
        base = self._states[-1]
        state = State(
            mapping=base.mapping.copy(),
            criteria=base.criteria.copy(),
            backtrack_causes=base.backtrack_causes[:],
        )
        self._states.append(state)

    def _add_to_criteria(self, criteria, requirement, parent):
        self._r.adding_requirement(requirement=requirement, parent=parent)

        identifier = self._p.identify(requirement_or_candidate=requirement)
        criterion = criteria.get(identifier)
        if criterion:
            incompatibilities = list(criterion.incompatibilities)
        else:
            incompatibilities = []

        matches = self._p.find_matches(
            identifier=identifier,
            requirements=IteratorMapping(
                criteria,
                operator.methodcaller("iter_requirement"),
                {identifier: [requirement]},
            ),
            incompatibilities=IteratorMapping(
                criteria,
                operator.attrgetter("incompatibilities"),
                {identifier: incompatibilities},
            ),
        )

        if criterion:
            information = list(criterion.information)
            information.append(RequirementInformation(requirement, parent))
        else:
            information = [RequirementInformation(requirement, parent)]

        criterion = Criterion(
            candidates=build_iter_view(matches),
            information=information,
            incompatibilities=incompatibilities,
        )
        if not criterion.candidates:
            raise RequirementsConflicted(criterion)
        criteria[identifier] = criterion

    def _remove_information_from_criteria(self, criteria, parents):
        """Remove information from parents of criteria.

        Concretely, removes all values from each criterion's ``information``
        field that have one of ``parents`` as provider of the requirement.

        :param criteria: The criteria to update.
        :param parents: Identifiers for which to remove information from all criteria.
        """
        if not parents:
            return
        for key, criterion in criteria.items():
            criteria[key] = Criterion(
                criterion.candidates,
                [
                    information
                    for information in criterion.information
                    if (
                        information.parent is None
                        or self._p.identify(information.parent) not in parents
                    )
                ],
                criterion.incompatibilities,
            )

    def _get_preference(self, name):
        return self._p.get_preference(
            identifier=name,
            resolutions=self.state.mapping,
            candidates=IteratorMapping(
                self.state.criteria,
                operator.attrgetter("candidates"),
            ),
            information=IteratorMapping(
                self.state.criteria,
                operator.attrgetter("information"),
            ),
            backtrack_causes=self.state.backtrack_causes,
        )

    def _is_current_pin_satisfying(self, name, criterion):
        try:
            current_pin = self.state.mapping[name]
        except KeyError:
            return False
        return all(
            self._p.is_satisfied_by(requirement=r, candidate=current_pin)
            for r in criterion.iter_requirement()
        )

    def _get_updated_criteria(self, candidate):
        criteria = self.state.criteria.copy()
        for requirement in self._p.get_dependencies(candidate=candidate):
            self._add_to_criteria(criteria, requirement, parent=candidate)
        return criteria

    def _attempt_to_pin_criterion(self, name):
        criterion = self.state.criteria[name]

        causes = []
        for candidate in criterion.candidates:
            try:
                criteria = self._get_updated_criteria(candidate)
            except RequirementsConflicted as e:
                self._r.rejecting_candidate(e.criterion, candidate)
                causes.append(e.criterion)
                continue

            # Check the newly-pinned candidate actually works. This should
            # always pass under normal circumstances, but in the case of a
            # faulty provider, we will raise an error to notify the implementer
            # to fix find_matches() and/or is_satisfied_by().
            satisfied = all(
                self._p.is_satisfied_by(requirement=r, candidate=candidate)
                for r in criterion.iter_requirement()
            )
            if not satisfied:
                raise InconsistentCandidate(candidate, criterion)

            self._r.pinning(candidate=candidate)
            self.state.criteria.update(criteria)

            # Put newly-pinned candidate at the end. This is essential because
            # backtracking looks at this mapping to get the last pin.
            self.state.mapping.pop(name, None)
            self.state.mapping[name] = candidate

            return []

        # All candidates tried, nothing works. This criterion is a dead
        # end, signal for backtracking.
        return causes

    def _backjump(self, causes):
        """Perform backjumping.

        When we enter here, the stack is like this::

            [ state Z ]
            [ state Y ]
            [ state X ]
            .... earlier states are irrelevant.

        1. No pins worked for Z, so it does not have a pin.
        2. We want to reset state Y to unpinned, and pin another candidate.
        3. State X holds what state Y was before the pin, but does not
           have the incompatibility information gathered in state Y.

        Each iteration of the loop will:

        1.  Identify Z. The incompatibility is not always caused by the latest
            state. For example, given three requirements A, B and C, with
            dependencies A1, B1 and C1, where A1 and B1 are incompatible: the
            last state might be related to C, so we want to discard the
            previous state.
        2.  Discard Z.
        3.  Discard Y but remember its incompatibility information gathered
            previously, and the failure we're dealing with right now.
        4.  Push a new state Y' based on X, and apply the incompatibility
            information from Y to Y'.
        5a. If this causes Y' to conflict, we need to backtrack again. Make Y'
            the new Z and go back to step 2.
        5b. If the incompatibilities apply cleanly, end backtracking.
        """
        incompatible_reqs = itertools.chain(
            (c.parent for c in causes if c.parent is not None),
            (c.requirement for c in causes),
        )
        incompatible_deps = {self._p.identify(r) for r in incompatible_reqs}
        while len(self._states) >= 3:
            # Remove the state that triggered backtracking.
            del self._states[-1]

            # Ensure to backtrack to a state that caused the incompatibility
            incompatible_state = False
            while not incompatible_state:
                # Retrieve the last candidate pin and known incompatibilities.
                try:
                    broken_state = self._states.pop()
                    name, candidate = broken_state.mapping.popitem()
                except (IndexError, KeyError):
                    raise ResolutionImpossible(causes)
                current_dependencies = {
                    self._p.identify(d)
                    for d in self._p.get_dependencies(candidate)
                }
                incompatible_state = not current_dependencies.isdisjoint(
                    incompatible_deps
                )

            incompatibilities_from_broken = [
                (k, list(v.incompatibilities))
                for k, v in broken_state.criteria.items()
            ]

            # Also mark the newly known incompatibility.
            incompatibilities_from_broken.append((name, [candidate]))

            # Create a new state from the last known-to-work one, and apply
            # the previously gathered incompatibility information.
            def _patch_criteria():
                for k, incompatibilities in incompatibilities_from_broken:
                    if not incompatibilities:
                        continue
                    try:
                        criterion = self.state.criteria[k]
                    except KeyError:
                        continue
                    matches = self._p.find_matches(
                        identifier=k,
                        requirements=IteratorMapping(
                            self.state.criteria,
                            operator.methodcaller("iter_requirement"),
                        ),
                        incompatibilities=IteratorMapping(
                            self.state.criteria,
                            operator.attrgetter("incompatibilities"),
                            {k: incompatibilities},
                        ),
                    )
                    candidates = build_iter_view(matches)
                    if not candidates:
                        return False
                    incompatibilities.extend(criterion.incompatibilities)
                    self.state.criteria[k] = Criterion(
                        candidates=candidates,
                        information=list(criterion.information),
                        incompatibilities=incompatibilities,
                    )
                return True

            self._push_new_state()
            success = _patch_criteria()

            # It works! Let's work on this new state.
            if success:
                return True

            # State does not work after applying known incompatibilities.
            # Try the still previous state.

        # No way to backtrack anymore.
        return False

    def resolve(self, requirements, max_rounds):
        if self._states:
            raise RuntimeError("already resolved")

        self._r.starting()

        # Initialize the root state.
        self._states = [
            State(
                mapping=collections.OrderedDict(),
                criteria={},
                backtrack_causes=[],
            )
        ]
        for r in requirements:
            try:
                self._add_to_criteria(self.state.criteria, r, parent=None)
            except RequirementsConflicted as e:
                raise ResolutionImpossible(e.criterion.information)

        # The root state is saved as a sentinel so the first ever pin can have
        # something to backtrack to if it fails. The root state is basically
        # pinning the virtual "root" package in the graph.
        self._push_new_state()

        for round_index in range(max_rounds):
            self._r.starting_round(index=round_index)

            unsatisfied_names = [
                key
                for key, criterion in self.state.criteria.items()
                if not self._is_current_pin_satisfying(key, criterion)
            ]

            # All criteria are accounted for. Nothing more to pin, we are done!
            if not unsatisfied_names:
                self._r.ending(state=self.state)
                return self.state

            # keep track of satisfied names to calculate diff after pinning
            satisfied_names = set(self.state.criteria.keys()) - set(
                unsatisfied_names
            )

            # Choose the most preferred unpinned criterion to try.
            name = min(unsatisfied_names, key=self._get_preference)
            failure_causes = self._attempt_to_pin_criterion(name)

            if failure_causes:
                causes = [i for c in failure_causes for i in c.information]
                # Backjump if pinning fails. The backjump process puts us in
                # an unpinned state, so we can work on it in the next round.
                self._r.resolving_conflicts(causes=causes)
                success = self._backjump(causes)
                self.state.backtrack_causes[:] = causes

                # Dead ends everywhere. Give up.
                if not success:
                    raise ResolutionImpossible(self.state.backtrack_causes)
            else:
                # discard as information sources any invalidated names
                # (unsatisfied names that were previously satisfied)
                newly_unsatisfied_names = {
                    key
                    for key, criterion in self.state.criteria.items()
                    if key in satisfied_names
                    and not self._is_current_pin_satisfying(key, criterion)
                }
                self._remove_information_from_criteria(
                    self.state.criteria, newly_unsatisfied_names
                )
                # Pinning was successful. Push a new state to do another pin.
                self._push_new_state()

            self._r.ending_round(index=round_index, state=self.state)

        raise ResolutionTooDeep(max_rounds)


def _has_route_to_root(criteria, key, all_keys, connected):
    if key in connected:
        return True
    if key not in criteria:
        return False
    for p in criteria[key].iter_parent():
        try:
            pkey = all_keys[id(p)]
        except KeyError:
            continue
        if pkey in connected:
            connected.add(key)
            return True
        if _has_route_to_root(criteria, pkey, all_keys, connected):
            connected.add(key)
            return True
    return False


Result = collections.namedtuple("Result", "mapping graph criteria")


def _build_result(state):
    mapping = state.mapping
    all_keys = {id(v): k for k, v in mapping.items()}
    all_keys[id(None)] = None

    graph = DirectedGraph()
    graph.add(None)  # Sentinel as root dependencies' parent.

    connected = {None}
    for key, criterion in state.criteria.items():
        if not _has_route_to_root(state.criteria, key, all_keys, connected):
            continue
        if key not in graph:
            graph.add(key)
        for p in criterion.iter_parent():
            try:
                pkey = all_keys[id(p)]
            except KeyError:
                continue
            if pkey not in graph:
                graph.add(pkey)
            graph.connect(pkey, key)

    return Result(
        mapping={k: v for k, v in mapping.items() if k in connected},
        graph=graph,
        criteria=state.criteria,
    )


class Resolver(AbstractResolver):
    """The thing that performs the actual resolution work."""

    base_exception = ResolverException

    def resolve(self, requirements, max_rounds=100):
        """Take a collection of constraints, spit out the resolution result.

        The return value is a representation to the final resolution result. It
        is a tuple subclass with three public members:

        * `mapping`: A dict of resolved candidates. Each key is an identifier
            of a requirement (as returned by the provider's `identify` method),
            and the value is the resolved candidate.
        * `graph`: A `DirectedGraph` instance representing the dependency tree.
            The vertices are keys of `mapping`, and each edge represents *why*
            a particular package is included. A special vertex `None` is
            included to represent parents of user-supplied requirements.
        * `criteria`: A dict of "criteria" that hold detailed information on
            how edges in the graph are derived. Each key is an identifier of a
            requirement, and the value is a `Criterion` instance.

        The following exceptions may be raised if a resolution cannot be found:

        * `ResolutionImpossible`: A resolution cannot be found for the given
            combination of requirements. The `causes` attribute of the
            exception is a list of (requirement, parent), giving the
            requirements that could not be satisfied.
        * `ResolutionTooDeep`: The dependency tree is too deeply nested and
            the resolver gave up. This is usually caused by a circular
            dependency, but you can try to resolve this by increasing the
            `max_rounds` argument.
        """
        resolution = Resolution(self.provider, self.reporter)
        state = resolution.resolve(requirements, max_rounds=max_rounds)
        return _build_result(state)
548 lines•20 KB
python
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