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* filer: keep a ranged read in random mode through its contiguous tail A far ReadAt on a fresh ReaderPattern left the sequential counter at -1, so the next buffer of the same ranged request landed on the frontier and flipped the verdict straight back to sequential — readChunkSliceAt then paid a whole-chunk fetch for the remainder of the range. Drop the counter to -ModeChangeLimit when random mode is entered so the verdict needs sustained sequential evidence to undo, matching the hysteresis an established sequential stream already gets. Generated with [Devin](https://devin.ai) Co-Authored-By: Devin <158243242+devin-ai-integration[bot]@users.noreply.github.com> * s3: pin small ranged GETs to range reads A ranged GET whose first read lands within SeqTolerance of offset 0 is judged sequential immediately, and even a far-starting range could flip back mid-request; either way readChunkSliceAt downloads each covered chunk in full, multiplying disk reads for small ranged reads (measured ~7x). Pin random mode for ranged requests no larger than SeqTolerance so all of the request's buffer reads stay range fetches. Larger ranges keep the dynamic pattern, where whole-chunk fetches amortize. Generated with [Devin](https://devin.ai) Co-Authored-By: Devin <158243242+devin-ai-integration[bot]@users.noreply.github.com> * filer: fetch only the part of a chunk the view covers Replaces the PinRandomMode size heuristic with a per-chunk coverage rule. ViewFromVisibleIntervals already clips chunk views to the request window, so a view that is not IsFullChunk() is one the request only partially needs; fetch it as a range regardless of the detected read pattern. This closes the holes a request-size pin left open: ranges larger than SeqTolerance no longer revert to whole-chunk downloads once their buffers look sequential, and ranges that fully cover a chunk keep the shared whole-chunk path instead of fetching 256KiB slices piecemeal. Prefetch (MaybeCache) skips clipped views so it cannot amplify a range read either. PinRandomMode is dropped: no caller needs it once coverage drives the fetch choice. Range fetches route through fetchChunkDataFn so tests observe them the same way as whole-chunk downloads. * filer: keep ciphered chunks on the whole-chunk path A range fetch cannot save bytes for a ciphered chunk: readEncryptedUrl always downloads and decrypts the whole blob before slicing. Sending partial views of ciphered chunks through fetchChunkRange would repeat the full download per buffer, so they keep the shared whole-chunk path where one download serves every buffer. Prefetch stays enabled for them for the same reason. * filer: keep compressed chunks on the whole-chunk path Like ciphered chunks, a range request on a compressed chunk makes the volume server read and decompress the whole needle, so range-per-buffer would repeat the full backend read for each 256KiB window. Route them through the shared whole-chunk path via ChunkView.CanRangeFetch. * filer: fall back to range fetch when a chunk exceeds the reader budget A ciphered or compressed chunk larger than readerCacheSizeMB can never be read through the whole-chunk path — the budget rejects the buffer — so its partial views must still range-fetch or the GET fails outright. --------- Co-authored-by: Devin <158243242+devin-ai-integration[bot]@users.noreply.github.com>
336 lines
9.6 KiB
Go
336 lines
9.6 KiB
Go
package filer
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import (
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"bytes"
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"context"
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"fmt"
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"math"
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"github.com/seaweedfs/seaweedfs/weed/pb/filer_pb"
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"github.com/seaweedfs/seaweedfs/weed/util"
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"github.com/seaweedfs/seaweedfs/weed/wdclient"
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)
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func TotalSize(chunks []*filer_pb.FileChunk) (size uint64) {
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for _, c := range chunks {
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t := uint64(c.Offset + int64(c.Size))
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if size < t {
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size = t
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}
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}
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return
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}
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func FileSize(entry *filer_pb.Entry) (size uint64) {
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if entry == nil || entry.Attributes == nil {
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return 0
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}
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fileSize := entry.Attributes.FileSize
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if entry.RemoteEntry != nil {
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if entry.RemoteEntry.RemoteMtime > entry.Attributes.Mtime {
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fileSize = maxUint64(fileSize, uint64(entry.RemoteEntry.RemoteSize))
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}
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}
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return maxUint64(TotalSize(entry.GetChunks()), fileSize)
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}
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func ETag(entry *filer_pb.Entry) (etag string) {
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if entry.Attributes == nil || entry.Attributes.Md5 == nil {
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return ETagChunks(entry.GetChunks())
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}
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return fmt.Sprintf("%x", entry.Attributes.Md5)
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}
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func ETagEntry(entry *Entry) (etag string) {
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if entry.IsInRemoteOnly() {
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return entry.Remote.RemoteETag
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}
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if entry.Attr.Md5 == nil {
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return ETagChunks(entry.GetChunks())
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}
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return fmt.Sprintf("%x", entry.Attr.Md5)
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}
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func ETagChunks(chunks []*filer_pb.FileChunk) (etag string) {
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if len(chunks) == 1 {
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return fmt.Sprintf("%x", util.Base64Md5ToBytes(chunks[0].ETag))
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}
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var md5Digests [][]byte
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for _, c := range chunks {
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md5Digests = append(md5Digests, util.Base64Md5ToBytes(c.ETag))
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}
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finalETag := fmt.Sprintf("%x-%d", util.Md5(bytes.Join(md5Digests, nil)), len(chunks))
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return finalETag
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}
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func CompactFileChunks(ctx context.Context, lookupFileIdFn wdclient.LookupFileIdFunctionType, chunks []*filer_pb.FileChunk) (compacted, garbage []*filer_pb.FileChunk) {
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visibles, _ := NonOverlappingVisibleIntervals(ctx, lookupFileIdFn, chunks, 0, math.MaxInt64)
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compacted, garbage = SeparateGarbageChunks(visibles, chunks)
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return
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}
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func SeparateGarbageChunks(visibles *IntervalList[*VisibleInterval], chunks []*filer_pb.FileChunk) (compacted []*filer_pb.FileChunk, garbage []*filer_pb.FileChunk) {
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fileIds := make(map[string]bool)
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for x := visibles.Front(); x != nil; x = x.Next {
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interval := x.Value
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fileIds[interval.fileId] = true
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}
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for _, chunk := range chunks {
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if _, found := fileIds[chunk.GetFileIdString()]; found {
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compacted = append(compacted, chunk)
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} else {
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garbage = append(garbage, chunk)
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}
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}
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return compacted, garbage
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}
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func FindGarbageChunks(visibles *IntervalList[*VisibleInterval], start int64, stop int64) (garbageFileIds map[string]struct{}) {
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garbageFileIds = make(map[string]struct{})
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for x := visibles.Front(); x != nil; x = x.Next {
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interval := x.Value
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offset := interval.start - interval.offsetInChunk
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if start <= offset && offset+int64(interval.chunkSize) <= stop {
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garbageFileIds[interval.fileId] = struct{}{}
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}
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}
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return
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}
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func MinusChunks(ctx context.Context, lookupFileIdFn wdclient.LookupFileIdFunctionType, as, bs []*filer_pb.FileChunk, invalidator CacheInvalidator) (delta []*filer_pb.FileChunk, err error) {
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aData, aMeta, aErr := ResolveChunkManifest(ctx, lookupFileIdFn, as, 0, math.MaxInt64, invalidator)
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if aErr != nil {
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return nil, aErr
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}
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bData, bMeta, bErr := ResolveChunkManifest(ctx, lookupFileIdFn, bs, 0, math.MaxInt64, invalidator)
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if bErr != nil {
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return nil, bErr
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}
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delta = append(delta, DoMinusChunks(aData, bData)...)
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delta = append(delta, DoMinusChunks(aMeta, bMeta)...)
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return
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}
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func DoMinusChunks(as, bs []*filer_pb.FileChunk) (delta []*filer_pb.FileChunk) {
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fileIds := make(map[string]bool)
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for _, interval := range bs {
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fileIds[interval.GetFileIdString()] = true
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}
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for _, chunk := range as {
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if _, found := fileIds[chunk.GetFileIdString()]; !found {
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delta = append(delta, chunk)
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}
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}
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return
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}
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func DoMinusChunksBySourceFileId(as, bs []*filer_pb.FileChunk) (delta []*filer_pb.FileChunk) {
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fileIds := make(map[string]bool)
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for _, interval := range bs {
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fileIds[interval.GetFileIdString()] = true
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fileIds[interval.GetSourceFileId()] = true
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}
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for _, chunk := range as {
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_, sourceFileIdFound := fileIds[chunk.GetSourceFileId()]
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_, fileIdFound := fileIds[chunk.GetFileId()]
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if !sourceFileIdFound && !fileIdFound {
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delta = append(delta, chunk)
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}
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}
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return
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}
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type ChunkView struct {
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FileId string
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OffsetInChunk int64 // offset within the chunk
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ViewSize uint64
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ViewOffset int64 // actual offset in the file, for the data specified via [offset, offset+size) in current chunk
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ChunkSize uint64
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CipherKey []byte
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IsGzipped bool
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ModifiedTsNs int64
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}
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func (cv *ChunkView) SetStartStop(start, stop int64) {
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cv.OffsetInChunk += start - cv.ViewOffset
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cv.ViewOffset = start
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cv.ViewSize = uint64(stop - start)
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}
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func (cv *ChunkView) Clone() IntervalValue {
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return &ChunkView{
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FileId: cv.FileId,
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OffsetInChunk: cv.OffsetInChunk,
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ViewSize: cv.ViewSize,
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ViewOffset: cv.ViewOffset,
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ChunkSize: cv.ChunkSize,
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CipherKey: cv.CipherKey,
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IsGzipped: cv.IsGzipped,
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ModifiedTsNs: cv.ModifiedTsNs,
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}
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}
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func (cv *ChunkView) IsFullChunk() bool {
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// IsFullChunk returns true if the view covers the entire chunk from the beginning.
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// This prevents bandwidth amplification when range requests happen to align
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// with chunk boundaries but don't actually want the full chunk.
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return cv.OffsetInChunk == 0 && cv.ViewSize == cv.ChunkSize
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}
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// CanRangeFetch reports whether fetching just the view's byte range avoids
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// reading more than the view needs. Ciphered and compressed chunks are
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// stored and served whole — a range on either still costs a full read plus
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// decrypt or decompress on the volume server — so partial views of them
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// take the shared whole-chunk path instead.
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func (cv *ChunkView) CanRangeFetch() bool {
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return cv.CipherKey == nil && !cv.IsGzipped
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}
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func ViewFromChunks(ctx context.Context, lookupFileIdFn wdclient.LookupFileIdFunctionType, chunks []*filer_pb.FileChunk, offset int64, size int64) (chunkViews *IntervalList[*ChunkView]) {
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visibles, _ := NonOverlappingVisibleIntervals(ctx, lookupFileIdFn, chunks, offset, offset+size)
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return ViewFromVisibleIntervals(visibles, offset, size)
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}
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func ViewFromVisibleIntervals(visibles *IntervalList[*VisibleInterval], offset int64, size int64) (chunkViews *IntervalList[*ChunkView]) {
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stop := offset + size
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if size == math.MaxInt64 {
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stop = math.MaxInt64
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}
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if stop < offset {
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stop = math.MaxInt64
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}
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chunkViews = NewIntervalList[*ChunkView]()
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for x := visibles.Front(); x != nil; x = x.Next {
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chunk := x.Value
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chunkStart, chunkStop := max(offset, chunk.start), min(stop, chunk.stop)
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if chunkStart < chunkStop {
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chunkView := &ChunkView{
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FileId: chunk.fileId,
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OffsetInChunk: chunkStart - chunk.start + chunk.offsetInChunk,
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ViewSize: uint64(chunkStop - chunkStart),
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ViewOffset: chunkStart,
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ChunkSize: chunk.chunkSize,
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CipherKey: chunk.cipherKey,
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IsGzipped: chunk.isGzipped,
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ModifiedTsNs: chunk.modifiedTsNs,
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}
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chunkViews.AppendInterval(&Interval[*ChunkView]{
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StartOffset: chunkStart,
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StopOffset: chunkStop,
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TsNs: chunk.modifiedTsNs,
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Value: chunkView,
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Prev: nil,
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Next: nil,
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})
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}
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}
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return chunkViews
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}
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func MergeIntoVisibles(visibles *IntervalList[*VisibleInterval], start int64, stop int64, chunk *filer_pb.FileChunk) {
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newV := &VisibleInterval{
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start: start,
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stop: stop,
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fileId: chunk.GetFileIdString(),
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modifiedTsNs: chunk.ModifiedTsNs,
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offsetInChunk: start - chunk.Offset, // the starting position in the chunk
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chunkSize: chunk.Size, // size of the chunk
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cipherKey: chunk.CipherKey,
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isGzipped: chunk.IsCompressed,
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}
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visibles.InsertInterval(start, stop, chunk.ModifiedTsNs, newV)
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}
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func MergeIntoChunkViews(chunkViews *IntervalList[*ChunkView], start int64, stop int64, chunk *filer_pb.FileChunk) {
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chunkView := &ChunkView{
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FileId: chunk.GetFileIdString(),
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OffsetInChunk: start - chunk.Offset,
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ViewSize: uint64(stop - start),
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ViewOffset: start,
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ChunkSize: chunk.Size,
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CipherKey: chunk.CipherKey,
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IsGzipped: chunk.IsCompressed,
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ModifiedTsNs: chunk.ModifiedTsNs,
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}
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chunkViews.InsertInterval(start, stop, chunk.ModifiedTsNs, chunkView)
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}
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// NonOverlappingVisibleIntervals translates the file chunk into VisibleInterval in memory
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// If the file chunk content is a chunk manifest
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func NonOverlappingVisibleIntervals(ctx context.Context, lookupFileIdFn wdclient.LookupFileIdFunctionType, chunks []*filer_pb.FileChunk, startOffset int64, stopOffset int64) (visibles *IntervalList[*VisibleInterval], err error) {
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chunks, _, err = ResolveChunkManifest(ctx, lookupFileIdFn, chunks, startOffset, stopOffset, nil)
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if err != nil {
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return
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}
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visibles2 := readResolvedChunks(chunks, 0, math.MaxInt64)
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return visibles2, err
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}
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// find non-overlapping visible intervals
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// visible interval map to one file chunk
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type VisibleInterval struct {
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start int64
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stop int64
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modifiedTsNs int64
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fileId string
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offsetInChunk int64
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chunkSize uint64
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cipherKey []byte
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isGzipped bool
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}
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func (v *VisibleInterval) SetStartStop(start, stop int64) {
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v.offsetInChunk += start - v.start
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v.start, v.stop = start, stop
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}
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func (v *VisibleInterval) Clone() IntervalValue {
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return &VisibleInterval{
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start: v.start,
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stop: v.stop,
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modifiedTsNs: v.modifiedTsNs,
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fileId: v.fileId,
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offsetInChunk: v.offsetInChunk,
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chunkSize: v.chunkSize,
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cipherKey: v.cipherKey,
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isGzipped: v.isGzipped,
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}
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}
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func min(x, y int64) int64 {
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if x <= y {
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return x
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}
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return y
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}
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func max(x, y int64) int64 {
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if x <= y {
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return y
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}
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return x
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}
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