11be35a165
To do so, a few dependencies have been imported: * external/bsd/lutok * external/mit/lua * external/public-domain/sqlite * external/public-domain/xz The Kyua framework is the new generation of ATF (Automated Test Framework), it is composed of: * external/bsd/atf * external/bsd/kyua-atf-compat * external/bsd/kyua-cli * external/bsd/kyua-tester * tests Kyua/ATF being written in C++, it depends on libstdc++ which is provided by GCC. As this is not part of the sources, Kyua is only compiled when the native GCC utils are installed. To install Kyua do the following: * In a cross-build enviromnent, add the following to the build.sh commandline: -V MKBINUTILS=yes -V MKGCCCMDS=yes WARNING: At this point the import is still experimental, and not supported on native builds (a.k.a make build). Change-Id: I26aee23c5bbd2d64adcb7c1beb98fe0d479d7ada
517 lines
12 KiB
C++
517 lines
12 KiB
C++
//
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// Automated Testing Framework (atf)
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//
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// Copyright (c) 2007 The NetBSD Foundation, Inc.
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// All rights reserved.
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//
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// Redistribution and use in source and binary forms, with or without
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// modification, are permitted provided that the following conditions
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// are met:
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// 1. Redistributions of source code must retain the above copyright
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// notice, this list of conditions and the following disclaimer.
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// 2. Redistributions in binary form must reproduce the above copyright
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// notice, this list of conditions and the following disclaimer in the
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// documentation and/or other materials provided with the distribution.
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//
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// THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND
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// CONTRIBUTORS ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES,
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// INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
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// MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
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// IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS BE LIABLE FOR ANY
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// DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
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// DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE
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// GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
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// INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER
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// IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
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// OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN
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// IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
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//
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#if defined(HAVE_CONFIG_H)
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#include "bconfig.h"
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#endif
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extern "C" {
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#include <sys/param.h>
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#include <sys/types.h>
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#include <sys/mount.h>
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#include <sys/stat.h>
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#include <sys/wait.h>
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#include <dirent.h>
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#include <libgen.h>
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#include <unistd.h>
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}
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#include <cerrno>
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#include <cstdlib>
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#include <cstring>
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extern "C" {
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#include "../../atf-c/error.h"
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}
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#include "../utils.hpp"
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#include "exceptions.hpp"
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#include "env.hpp"
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#include "fs.hpp"
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#include "process.hpp"
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#include "sanity.hpp"
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#include "text.hpp"
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namespace impl = atf::fs;
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#define IMPL_NAME "atf::fs"
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// ------------------------------------------------------------------------
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// Auxiliary functions.
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// ------------------------------------------------------------------------
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static bool safe_access(const impl::path&, int, int);
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//!
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//! \brief A controlled version of access(2).
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//!
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//! This function reimplements the standard access(2) system call to
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//! safely control its exit status and raise an exception in case of
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//! failure.
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//!
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static
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bool
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safe_access(const impl::path& p, int mode, int experr)
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{
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bool ok;
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atf_error_t err = atf_fs_eaccess(p.c_path(), mode);
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if (atf_is_error(err)) {
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if (atf_error_is(err, "libc")) {
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if (atf_libc_error_code(err) == experr) {
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atf_error_free(err);
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ok = false;
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} else {
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atf::throw_atf_error(err);
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// XXX Silence warning; maybe throw_atf_error should be
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// an exception and not a function.
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ok = false;
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}
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} else {
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atf::throw_atf_error(err);
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// XXX Silence warning; maybe throw_atf_error should be
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// an exception and not a function.
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ok = false;
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}
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} else
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ok = true;
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return ok;
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}
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// ------------------------------------------------------------------------
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// The "path" class.
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// ------------------------------------------------------------------------
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impl::path::path(const std::string& s)
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{
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atf_error_t err = atf_fs_path_init_fmt(&m_path, "%s", s.c_str());
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if (atf_is_error(err))
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throw_atf_error(err);
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}
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impl::path::path(const path& p)
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{
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atf_error_t err = atf_fs_path_copy(&m_path, &p.m_path);
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if (atf_is_error(err))
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throw_atf_error(err);
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}
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impl::path::path(const atf_fs_path_t *p)
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{
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atf_error_t err = atf_fs_path_copy(&m_path, p);
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if (atf_is_error(err))
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throw_atf_error(err);
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}
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impl::path::~path(void)
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{
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atf_fs_path_fini(&m_path);
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}
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const char*
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impl::path::c_str(void)
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const
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{
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return atf_fs_path_cstring(&m_path);
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}
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const atf_fs_path_t*
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impl::path::c_path(void)
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const
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{
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return &m_path;
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}
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std::string
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impl::path::str(void)
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const
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{
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return c_str();
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}
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bool
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impl::path::is_absolute(void)
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const
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{
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return atf_fs_path_is_absolute(&m_path);
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}
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bool
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impl::path::is_root(void)
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const
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{
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return atf_fs_path_is_root(&m_path);
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}
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impl::path
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impl::path::branch_path(void)
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const
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{
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atf_fs_path_t bp;
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atf_error_t err;
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err = atf_fs_path_branch_path(&m_path, &bp);
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if (atf_is_error(err))
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throw_atf_error(err);
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path p(atf_fs_path_cstring(&bp));
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atf_fs_path_fini(&bp);
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return p;
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}
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std::string
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impl::path::leaf_name(void)
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const
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{
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atf_dynstr_t ln;
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atf_error_t err;
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err = atf_fs_path_leaf_name(&m_path, &ln);
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if (atf_is_error(err))
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throw_atf_error(err);
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std::string s(atf_dynstr_cstring(&ln));
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atf_dynstr_fini(&ln);
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return s;
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}
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impl::path
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impl::path::to_absolute(void)
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const
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{
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atf_fs_path_t pa;
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atf_error_t err = atf_fs_path_to_absolute(&m_path, &pa);
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if (atf_is_error(err))
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throw_atf_error(err);
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path p(atf_fs_path_cstring(&pa));
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atf_fs_path_fini(&pa);
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return p;
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}
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impl::path&
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impl::path::operator=(const path& p)
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{
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atf_fs_path_t tmp;
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atf_error_t err = atf_fs_path_init_fmt(&tmp, "%s", p.c_str());
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if (atf_is_error(err))
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throw_atf_error(err);
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else {
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atf_fs_path_fini(&m_path);
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m_path = tmp;
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}
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return *this;
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}
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bool
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impl::path::operator==(const path& p)
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const
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{
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return atf_equal_fs_path_fs_path(&m_path, &p.m_path);
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}
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bool
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impl::path::operator!=(const path& p)
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const
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{
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return !atf_equal_fs_path_fs_path(&m_path, &p.m_path);
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}
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impl::path
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impl::path::operator/(const std::string& p)
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const
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{
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path p2 = *this;
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atf_error_t err = atf_fs_path_append_fmt(&p2.m_path, "%s", p.c_str());
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if (atf_is_error(err))
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throw_atf_error(err);
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return p2;
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}
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impl::path
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impl::path::operator/(const path& p)
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const
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{
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path p2 = *this;
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atf_error_t err = atf_fs_path_append_fmt(&p2.m_path, "%s",
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atf_fs_path_cstring(&p.m_path));
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if (atf_is_error(err))
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throw_atf_error(err);
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return p2;
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}
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bool
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impl::path::operator<(const path& p)
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const
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{
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const char *s1 = atf_fs_path_cstring(&m_path);
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const char *s2 = atf_fs_path_cstring(&p.m_path);
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return std::strcmp(s1, s2) < 0;
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}
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// ------------------------------------------------------------------------
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// The "file_info" class.
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// ------------------------------------------------------------------------
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const int impl::file_info::blk_type = atf_fs_stat_blk_type;
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const int impl::file_info::chr_type = atf_fs_stat_chr_type;
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const int impl::file_info::dir_type = atf_fs_stat_dir_type;
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const int impl::file_info::fifo_type = atf_fs_stat_fifo_type;
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const int impl::file_info::lnk_type = atf_fs_stat_lnk_type;
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const int impl::file_info::reg_type = atf_fs_stat_reg_type;
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const int impl::file_info::sock_type = atf_fs_stat_sock_type;
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const int impl::file_info::wht_type = atf_fs_stat_wht_type;
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impl::file_info::file_info(const path& p)
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{
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atf_error_t err;
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err = atf_fs_stat_init(&m_stat, p.c_path());
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if (atf_is_error(err))
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throw_atf_error(err);
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}
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impl::file_info::file_info(const file_info& fi)
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{
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atf_fs_stat_copy(&m_stat, &fi.m_stat);
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}
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impl::file_info::~file_info(void)
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{
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atf_fs_stat_fini(&m_stat);
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}
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dev_t
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impl::file_info::get_device(void)
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const
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{
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return atf_fs_stat_get_device(&m_stat);
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}
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ino_t
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impl::file_info::get_inode(void)
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const
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{
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return atf_fs_stat_get_inode(&m_stat);
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}
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mode_t
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impl::file_info::get_mode(void)
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const
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{
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return atf_fs_stat_get_mode(&m_stat);
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}
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off_t
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impl::file_info::get_size(void)
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const
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{
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return atf_fs_stat_get_size(&m_stat);
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}
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int
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impl::file_info::get_type(void)
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const
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{
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return atf_fs_stat_get_type(&m_stat);
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}
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bool
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impl::file_info::is_owner_readable(void)
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const
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{
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return atf_fs_stat_is_owner_readable(&m_stat);
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}
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bool
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impl::file_info::is_owner_writable(void)
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const
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{
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return atf_fs_stat_is_owner_writable(&m_stat);
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}
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bool
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impl::file_info::is_owner_executable(void)
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const
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{
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return atf_fs_stat_is_owner_executable(&m_stat);
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}
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bool
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impl::file_info::is_group_readable(void)
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const
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{
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return atf_fs_stat_is_group_readable(&m_stat);
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}
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bool
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impl::file_info::is_group_writable(void)
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const
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{
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return atf_fs_stat_is_group_writable(&m_stat);
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}
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bool
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impl::file_info::is_group_executable(void)
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const
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{
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return atf_fs_stat_is_group_executable(&m_stat);
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}
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bool
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impl::file_info::is_other_readable(void)
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const
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{
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return atf_fs_stat_is_other_readable(&m_stat);
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}
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bool
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impl::file_info::is_other_writable(void)
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const
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{
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return atf_fs_stat_is_other_writable(&m_stat);
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}
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bool
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impl::file_info::is_other_executable(void)
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const
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{
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return atf_fs_stat_is_other_executable(&m_stat);
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}
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// ------------------------------------------------------------------------
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// The "directory" class.
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// ------------------------------------------------------------------------
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impl::directory::directory(const path& p)
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{
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DIR* dp = ::opendir(p.c_str());
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if (dp == NULL)
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throw system_error(IMPL_NAME "::directory::directory(" +
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p.str() + ")", "opendir(3) failed", errno);
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struct dirent* dep;
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while ((dep = ::readdir(dp)) != NULL) {
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path entryp = p / dep->d_name;
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insert(value_type(dep->d_name, file_info(entryp)));
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}
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if (::closedir(dp) == -1)
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throw system_error(IMPL_NAME "::directory::directory(" +
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p.str() + ")", "closedir(3) failed", errno);
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}
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std::set< std::string >
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impl::directory::names(void)
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const
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{
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std::set< std::string > ns;
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for (const_iterator iter = begin(); iter != end(); iter++)
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ns.insert((*iter).first);
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return ns;
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}
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// ------------------------------------------------------------------------
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// Free functions.
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// ------------------------------------------------------------------------
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bool
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impl::exists(const path& p)
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{
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atf_error_t err;
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bool b;
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err = atf_fs_exists(p.c_path(), &b);
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if (atf_is_error(err))
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throw_atf_error(err);
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return b;
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}
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bool
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impl::have_prog_in_path(const std::string& prog)
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{
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PRE(prog.find('/') == std::string::npos);
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// Do not bother to provide a default value for PATH. If it is not
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// there something is broken in the user's environment.
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if (!atf::env::has("PATH"))
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throw std::runtime_error("PATH not defined in the environment");
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std::vector< std::string > dirs =
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atf::text::split(atf::env::get("PATH"), ":");
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bool found = false;
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for (std::vector< std::string >::const_iterator iter = dirs.begin();
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!found && iter != dirs.end(); iter++) {
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const path& dir = path(*iter);
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if (is_executable(dir / prog))
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found = true;
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}
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return found;
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}
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bool
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impl::is_executable(const path& p)
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{
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if (!exists(p))
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return false;
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return safe_access(p, atf_fs_access_x, EACCES);
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}
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void
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impl::remove(const path& p)
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{
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if (file_info(p).get_type() == file_info::dir_type)
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throw atf::system_error(IMPL_NAME "::remove(" + p.str() + ")",
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"Is a directory",
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EPERM);
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if (::unlink(p.c_str()) == -1)
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throw atf::system_error(IMPL_NAME "::remove(" + p.str() + ")",
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"unlink(" + p.str() + ") failed",
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errno);
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}
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void
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impl::rmdir(const path& p)
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{
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atf_error_t err = atf_fs_rmdir(p.c_path());
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if (atf_is_error(err))
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throw_atf_error(err);
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}
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