With --auth-proxy set and --auth-key unset, serve s3 registered every client supplied access key ID with an empty secret and verified the SigV4 signature against that, so anyone could sign a request for an arbitrary access key ID with an empty secret and be let in. The proxy program was only ever given the access key ID (as both user and pass) so it had nothing with which to authenticate the client either. An S3 client never sends its secret, only a signature made with it, so the server has to know the secret to check the request. The auth proxy protocol as been changed to handle this. For serve s3 the proxy program is given just the access key ID as the user (no pass or public_key) and must return the matching secret as _secret_access_key in its output. rclone verifies the request's signature against that secret, refusing the request if the proxy rejects the access key ID, doesn't return a secret or returns an empty one, or the signature doesn't match. The secret is only used for this server's own verification and is never registered with gofakes3, so other serve s3 instances in the same process don't honour it. The proxy's answers are cached. If a signature fails against a cached secret the proxy is consulted again so a rotated secret takes effect immediately - but only for a signature mismatch, and at most once every 10 seconds per access key ID and client IP, so a stream of bad signatures can't make the proxy program run for every request. A rotation never shuts down the cached backend under requests still using it. A cached answer is checked with the proxy again once it is 5 minutes old even if in constant use, so revoking an access key ID takes effect within 5 minutes. This means --auth-key is no longer needed with --auth-proxy: it is ignored and a warning is given at startup if both are set. The proxy is the source of truth for both the credentials and the backend they map to. Presigned URLs (credential in the query string) are now recognised by the proxy middleware too. The auth proxy docs are added to serve s3. Note that the serve s3 auth proxy protocol has changed. The proxy program is now given the access key ID as "user" (it was previously given an MD5 hash of it, with the access key ID as "pass") and must return the matching secret as "_secret_access_key". This needs gofakes3 v0.0.9 for signature.V4SignVerifyWithSecret.
478 lines
15 KiB
Go
478 lines
15 KiB
Go
package proxy
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import (
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"context"
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"crypto/rand"
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"crypto/rsa"
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"crypto/sha256"
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"encoding/base64"
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"strings"
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"sync"
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"testing"
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"time"
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_ "github.com/rclone/rclone/backend/local"
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"github.com/rclone/rclone/fs"
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"github.com/rclone/rclone/fs/config/configmap"
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"github.com/rclone/rclone/fs/config/obscure"
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"github.com/rclone/rclone/vfs"
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"github.com/rclone/rclone/vfs/vfscommon"
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"github.com/stretchr/testify/assert"
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"github.com/stretchr/testify/require"
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"golang.org/x/crypto/ssh"
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)
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func TestRun(t *testing.T) {
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opt := Opt
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cmd := "go run proxy_code.go"
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opt.AuthProxy = cmd
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p := New(context.Background(), &opt, &vfscommon.Opt)
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t.Run("Normal", func(t *testing.T) {
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config, err := p.run(map[string]string{
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"type": "ftp",
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"user": "me",
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"pass": "pass",
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"host": "127.0.0.1",
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})
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require.NoError(t, err)
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assert.Equal(t, configmap.Simple{
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"type": "ftp",
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"user": "me-test",
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"pass": "pass",
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"host": "127.0.0.1",
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"_root": "",
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}, config)
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})
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t.Run("ClientIP", func(t *testing.T) {
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config, err := p.run(map[string]string{
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"type": "ftp",
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"user": "me",
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"pass": "pass",
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"host": "127.0.0.1",
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"client_ip": "192.0.2.1",
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})
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require.NoError(t, err)
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assert.Equal(t, configmap.Simple{
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"type": "ftp",
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"user": "me-test",
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"pass": "pass",
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"host": "127.0.0.1",
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"client_ip": "192.0.2.1",
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"_root": "",
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}, config)
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})
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t.Run("Error", func(t *testing.T) {
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config, err := p.run(map[string]string{
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"error": "potato",
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})
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assert.Nil(t, config)
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require.Error(t, err)
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require.Contains(t, err.Error(), "potato")
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})
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t.Run("Obscure", func(t *testing.T) {
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config, err := p.run(map[string]string{
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"type": "ftp",
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"user": "me",
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"pass": "pass",
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"host": "127.0.0.1",
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"_obscure": "pass,user",
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})
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require.NoError(t, err)
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config["user"] = obscure.MustReveal(config["user"])
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config["pass"] = obscure.MustReveal(config["pass"])
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assert.Equal(t, configmap.Simple{
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"type": "ftp",
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"user": "me-test",
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"pass": "pass",
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"host": "127.0.0.1",
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"_obscure": "pass,user",
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"_root": "",
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}, config)
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})
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const testUser = "testUser"
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const testPass = "testPass"
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const testIP = "192.0.2.1"
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const testAddr = testIP + ":1024"
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const otherAddr = "198.51.100.1:1024"
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t.Run("CacheKey", func(t *testing.T) {
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// The source port differs on every connection so it must not
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// affect the cache key, otherwise the proxy would be run for
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// every connection rather than once per client.
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assert.Equal(t,
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generateCacheKey(testUser, testPass, ipFromAddr(testIP+":1024")),
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generateCacheKey(testUser, testPass, ipFromAddr(testIP+":2048")))
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// A different client IP must produce a different key so the
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// proxy is consulted again
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assert.NotEqual(t,
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generateCacheKey(testUser, testPass, ipFromAddr(testAddr)),
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generateCacheKey(testUser, testPass, ipFromAddr(otherAddr)))
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})
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t.Run("call w/Password", func(t *testing.T) {
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// check cache empty
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assert.Equal(t, 0, p.vfsCache.Entries())
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defer p.vfsCache.Clear()
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passwordBytes := []byte(testPass)
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value, err := p.call(testUser, testPass, authPassword, testIP)
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require.NoError(t, err)
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entry, ok := value.(cacheEntry)
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require.True(t, ok)
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// check hash is correct in entry
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assert.Equal(t, entry.pwHash, sha256.Sum256(passwordBytes))
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require.NotNil(t, entry.vfs)
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f := entry.vfs.Fs()
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require.NotNil(t, f)
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cacheKey := generateCacheKey(testUser, testPass, testIP)
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assert.Equal(t, "proxy-"+cacheKey, f.Name())
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assert.True(t, strings.HasPrefix(f.String(), "Local file system"))
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// check it is in the cache
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assert.Equal(t, 1, p.vfsCache.Entries())
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cacheValue, ok := p.vfsCache.GetMaybe(cacheKey)
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assert.True(t, ok)
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assert.Equal(t, value, cacheValue)
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})
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t.Run("Call w/Password", func(t *testing.T) {
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// check cache empty
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assert.Equal(t, 0, p.vfsCache.Entries())
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defer p.vfsCache.Clear()
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cacheKey := generateCacheKey(testUser, testPass, testIP)
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vfs, vfsKey, err := p.Call(testUser, testPass, false, testAddr)
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require.NoError(t, err)
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require.NotNil(t, vfs)
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assert.Equal(t, "proxy-"+cacheKey, vfs.Fs().Name())
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assert.Equal(t, cacheKey, vfsKey)
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// check it is in the cache
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assert.Equal(t, 1, p.vfsCache.Entries())
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cacheValue, ok := p.vfsCache.GetMaybe(cacheKey)
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assert.True(t, ok)
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cached, ok := cacheValue.(cacheEntry)
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assert.True(t, ok)
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assert.Equal(t, vfs, cached.vfs)
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// Test Get works while we have something in the cache
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t.Run("Get", func(t *testing.T) {
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assert.Equal(t, vfs, p.Get(cacheKey))
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assert.Nil(t, p.Get("unknown"))
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})
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// now try again from the cache
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vfs, vfsKey, err = p.Call(testUser, testPass, false, testAddr)
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require.NoError(t, err)
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require.NotNil(t, vfs)
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assert.Equal(t, "proxy-"+cacheKey, vfs.Fs().Name())
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assert.Equal(t, cacheKey, vfsKey)
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// check cache is at the same level
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assert.Equal(t, 1, p.vfsCache.Entries())
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// A different password produces a different cache key, so it
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// creates a fresh cache entry rather than hitting the existing
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// one. Authentication itself is the proxy script's job.
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vfs2, vfsKey2, err := p.Call(testUser, testPass+"different", false, testAddr)
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require.NoError(t, err)
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require.NotNil(t, vfs2)
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assert.NotEqual(t, cacheKey, vfsKey2)
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assert.Equal(t, 2, p.vfsCache.Entries())
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// The underlying fs.Fs must also be a fresh instance from fs/cache
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if vfs.Fs() == vfs2.Fs() {
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t.Error("fs/cache returned the stale backend after auth change")
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}
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// A different client IP also produces a different cache key, so
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// the proxy is consulted again rather than the cached backend
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// being reused - the proxy may be filtering on the IP.
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vfs3, vfsKey3, err := p.Call(testUser, testPass, false, otherAddr)
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require.NoError(t, err)
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require.NotNil(t, vfs3)
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assert.NotEqual(t, cacheKey, vfsKey3)
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assert.Equal(t, 3, p.vfsCache.Entries())
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// If a cached entry's pwHash somehow doesn't match the supplied
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// auth (eg a hash collision on the cache key), Call must reject
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// it. Simulate by corrupting the cached pwHash.
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entry := cacheEntry{vfs: vfs, pwHash: sha256.Sum256([]byte("tampered"))}
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p.vfsCache.Put(cacheKey, entry)
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vfs, vfsKey, err = p.Call(testUser, testPass, false, testAddr)
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require.Error(t, err)
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require.Contains(t, err.Error(), "incorrect password")
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require.Nil(t, vfs)
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require.Equal(t, "", vfsKey)
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})
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t.Run("Call w/o Address", func(t *testing.T) {
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// A client with no address, eg on a unix socket, must still
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// authenticate
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assert.Equal(t, 0, p.vfsCache.Entries())
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defer p.vfsCache.Clear()
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vfs, vfsKey, err := p.Call(testUser, testPass, false, "")
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require.NoError(t, err)
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require.NotNil(t, vfs)
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assert.Equal(t, generateCacheKey(testUser, testPass, ""), vfsKey)
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assert.Equal(t, 1, p.vfsCache.Entries())
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})
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privateKey, privateKeyErr := rsa.GenerateKey(rand.Reader, 2048)
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if privateKeyErr != nil {
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fs.Fatal(nil, "error generating test private key "+privateKeyErr.Error())
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}
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publicKey, publicKeyError := ssh.NewPublicKey(&privateKey.PublicKey)
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if publicKeyError != nil {
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fs.Fatal(nil, "error generating test public key "+publicKeyError.Error())
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}
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publicKeyString := base64.StdEncoding.EncodeToString(publicKey.Marshal())
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t.Run("Call w/PublicKey", func(t *testing.T) {
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// check cache empty
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assert.Equal(t, 0, p.vfsCache.Entries())
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defer p.vfsCache.Clear()
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value, err := p.call(testUser, publicKeyString, authPublicKey, testIP)
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require.NoError(t, err)
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entry, ok := value.(cacheEntry)
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require.True(t, ok)
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// check publicKey is correct in entry
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require.NoError(t, err)
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require.NotNil(t, entry.vfs)
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f := entry.vfs.Fs()
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require.NotNil(t, f)
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cacheKey := generateCacheKey(testUser, publicKeyString, testIP)
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assert.Equal(t, "proxy-"+cacheKey, f.Name())
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assert.True(t, strings.HasPrefix(f.String(), "Local file system"))
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// check it is in the cache
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assert.Equal(t, 1, p.vfsCache.Entries())
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cacheValue, ok := p.vfsCache.GetMaybe(cacheKey)
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assert.True(t, ok)
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assert.Equal(t, value, cacheValue)
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})
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t.Run("call w/PublicKey", func(t *testing.T) {
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// check cache empty
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assert.Equal(t, 0, p.vfsCache.Entries())
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defer p.vfsCache.Clear()
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cacheKey := generateCacheKey(testUser, publicKeyString, testIP)
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vfs, vfsKey, err := p.Call(
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testUser,
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publicKeyString,
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true,
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testAddr,
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)
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require.NoError(t, err)
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require.NotNil(t, vfs)
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assert.Equal(t, "proxy-"+cacheKey, vfs.Fs().Name())
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assert.Equal(t, cacheKey, vfsKey)
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// check it is in the cache
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assert.Equal(t, 1, p.vfsCache.Entries())
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cacheValue, ok := p.vfsCache.GetMaybe(cacheKey)
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assert.True(t, ok)
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cached, ok := cacheValue.(cacheEntry)
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assert.True(t, ok)
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assert.Equal(t, vfs, cached.vfs)
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// Test Get works while we have something in the cache
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t.Run("Get", func(t *testing.T) {
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assert.Equal(t, vfs, p.Get(cacheKey))
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assert.Nil(t, p.Get("unknown"))
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})
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// now try again from the cache
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vfs, vfsKey, err = p.Call(testUser, publicKeyString, true, testAddr)
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require.NoError(t, err)
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require.NotNil(t, vfs)
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assert.Equal(t, "proxy-"+cacheKey, vfs.Fs().Name())
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assert.Equal(t, cacheKey, vfsKey)
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// check cache is at the same level
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assert.Equal(t, 1, p.vfsCache.Entries())
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// A different public key produces a different cache key, so it
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// creates a fresh cache entry rather than hitting the existing
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// one. Authentication itself is the proxy script's job.
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vfs2, vfsKey2, err := p.Call(testUser, publicKeyString+"different", true, testAddr)
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require.NoError(t, err)
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require.NotNil(t, vfs2)
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assert.NotEqual(t, cacheKey, vfsKey2)
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assert.Equal(t, 2, p.vfsCache.Entries())
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// The underlying fs.Fs must be a fresh instance from fs/cache
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if vfs.Fs() == vfs2.Fs() {
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t.Error("fs/cache returned the stale backend after public key change")
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}
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// If a cached entry's pwHash somehow doesn't match the supplied
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// auth (eg a hash collision on the cache key), Call must reject
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// it. Simulate by corrupting the cached pwHash.
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entry := cacheEntry{vfs: vfs, pwHash: sha256.Sum256([]byte("tampered"))}
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p.vfsCache.Put(cacheKey, entry)
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vfs, vfsKey, err = p.Call(testUser, publicKeyString, true, testAddr)
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require.Error(t, err)
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require.Contains(t, err.Error(), "incorrect public key")
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require.Nil(t, vfs)
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require.Equal(t, "", vfsKey)
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})
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}
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// TestCallAccessKeyConcurrentRefresh checks that concurrent refreshes
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// which all see a rotated secret end up sharing one backend and one
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// cache entry rather than the later ones retiring the entry an
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// earlier one created and returned.
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func TestCallAccessKeyConcurrentRefresh(t *testing.T) {
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opt := Opt
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opt.AuthProxy = "go run proxy_code.go"
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p := New(context.Background(), &opt, &vfscommon.Opt)
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defer p.Shutdown()
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const remoteAddr = "192.0.2.1:1234"
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oldInterval := accessKeyRefreshInterval
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accessKeyRefreshInterval = 0
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defer func() { accessKeyRefreshInterval = oldInterval }()
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VFS, _, err := p.CallAccessKey("CONCURRENT", remoteAddr, false)
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require.NoError(t, err)
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// Rotate the secret then refresh from many goroutines at once
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t.Setenv("RCLONE_TEST_PROXY_SECRET_SUFFIX", "-rotated")
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const n = 8
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results := make([]*vfs.VFS, n)
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var wg sync.WaitGroup
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for i := range n {
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wg.Go(func() {
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newVFS, secret, err := p.CallAccessKey("CONCURRENT", remoteAddr, true)
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assert.NoError(t, err)
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assert.Equal(t, "CONCURRENT-rotated", secret)
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results[i] = newVFS
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})
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}
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wg.Wait()
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// Every caller must have got the same backend and only one
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// entry was retired
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for i := range n {
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assert.Same(t, VFS, results[i], "goroutine %d got a different backend", i)
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}
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assert.Equal(t, 2, p.vfsCache.Entries())
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}
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func TestIPFromAddr(t *testing.T) {
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for _, test := range []struct {
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in string
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want string
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}{
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{"192.0.2.1:1024", "192.0.2.1"},
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{"[2001:db8::1]:1024", "2001:db8::1"},
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{"[::ffff:192.0.2.1]:1024", "192.0.2.1"},
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{"[fe80::1%eth0]:1024", "fe80::1%eth0"},
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{"/tmp/rclone.sock", ""},
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{"/tmp/foo:bar.sock", ""},
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{`C:\Users\me\rclone.sock`, ""},
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{"@", ""},
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{"<nil>", ""},
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{"", ""},
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} {
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assert.Equal(t, test.want, ipFromAddr(test.in), test.in)
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}
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}
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func TestCallAccessKey(t *testing.T) {
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opt := Opt
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opt.AuthProxy = "go run proxy_code.go"
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p := New(context.Background(), &opt, &vfscommon.Opt)
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defer p.Shutdown()
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const remoteAddr = "192.0.2.1:1234"
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// Disable refresh rate limiting for this test
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oldInterval := accessKeyRefreshInterval
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accessKeyRefreshInterval = 0
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defer func() { accessKeyRefreshInterval = oldInterval }()
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VFS, secret, err := p.CallAccessKey("AKID", remoteAddr, false)
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require.NoError(t, err)
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require.NotNil(t, VFS)
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assert.Equal(t, "AKID-secret", secret)
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// Check the cached entry is returned on the next call
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VFS2, secret2, err := p.CallAccessKey("AKID", remoteAddr, false)
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require.NoError(t, err)
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assert.Same(t, VFS, VFS2)
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assert.Equal(t, secret, secret2)
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// Check a different access key ID gets a different backend
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VFS3, secret3, err := p.CallAccessKey("OTHER", remoteAddr, false)
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require.NoError(t, err)
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assert.NotSame(t, VFS, VFS3)
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assert.Equal(t, "OTHER-secret", secret3)
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// Check a refresh with an unchanged secret keeps the cached backend
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VFS4, secret4, err := p.CallAccessKey("AKID", remoteAddr, true)
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require.NoError(t, err)
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assert.Same(t, VFS, VFS4)
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assert.Equal(t, secret, secret4)
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// Check a refresh with a changed secret returns the new secret.
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// The VFS is the same object as vfs.New shares a live VFS for the
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// same backend and options, which keeps requests in flight under
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// the old secret working.
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t.Setenv("RCLONE_TEST_PROXY_SECRET_SUFFIX", "-rotated")
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entries := p.vfsCache.Entries()
|
|
VFS5, secret5, err := p.CallAccessKey("AKID", remoteAddr, true)
|
|
require.NoError(t, err)
|
|
assert.Same(t, VFS, VFS5)
|
|
assert.Equal(t, "AKID-rotated", secret5)
|
|
// The old entry is retired rather than dropped
|
|
assert.Equal(t, entries+1, p.vfsCache.Entries())
|
|
|
|
// Check a proxy which doesn't return the secret is an error
|
|
_, _, err = p.CallAccessKey("nosecret", remoteAddr, false)
|
|
require.ErrorContains(t, err, "_secret_access_key not set")
|
|
|
|
// Check a proxy which returns an empty secret is an error
|
|
_, _, err = p.CallAccessKey("emptysecret", remoteAddr, false)
|
|
require.ErrorContains(t, err, "_secret_access_key is empty")
|
|
|
|
// Check refreshes are rate limited: with a long interval a
|
|
// refresh returns the cached secret without running the proxy
|
|
accessKeyRefreshInterval = time.Hour
|
|
t.Setenv("RCLONE_TEST_PROXY_SECRET_SUFFIX", "-rotated-again")
|
|
VFS6, secret6, err := p.CallAccessKey("AKID", remoteAddr, true)
|
|
require.NoError(t, err)
|
|
assert.Same(t, VFS5, VFS6)
|
|
assert.Equal(t, "AKID-rotated", secret6)
|
|
|
|
// And with no interval the proxy is run and the rotation seen
|
|
accessKeyRefreshInterval = 0
|
|
_, secret7, err := p.CallAccessKey("AKID", remoteAddr, true)
|
|
require.NoError(t, err)
|
|
assert.Equal(t, "AKID-rotated-again", secret7)
|
|
|
|
// Check a cached entry is revalidated with the proxy once it is
|
|
// old enough even without a refresh being asked for
|
|
oldRevalidate := accessKeyRevalidateInterval
|
|
defer func() { accessKeyRevalidateInterval = oldRevalidate }()
|
|
t.Setenv("RCLONE_TEST_PROXY_REVOKED", "AKID")
|
|
_, secret8, err := p.CallAccessKey("AKID", remoteAddr, false)
|
|
require.NoError(t, err, "cached entry should still be trusted")
|
|
assert.Equal(t, "AKID-rotated-again", secret8)
|
|
accessKeyRevalidateInterval = 0
|
|
_, _, err = p.CallAccessKey("AKID", remoteAddr, false)
|
|
require.ErrorContains(t, err, "revoked")
|
|
}
|