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https://github.com/go-gst/go-gst.git
synced 2025-10-06 08:27:03 +08:00
add appsink example back and add more mapinfo data access funcs
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129
examples/appsink/main.go
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129
examples/appsink/main.go
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@@ -0,0 +1,129 @@
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// This example shows how to use the appsink element.
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package main
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import (
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"encoding/binary"
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"fmt"
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"math"
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"os"
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"os/signal"
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"github.com/go-gst/go-gst/pkg/gst"
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"github.com/go-gst/go-gst/pkg/gstapp"
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)
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func createPipeline() (gst.Pipeline, error) {
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gst.Init()
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pipeline := gst.NewPipeline("").(gst.Pipeline)
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src := gst.ElementFactoryMake("audiotestsrc", "")
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sink := gst.ElementFactoryMake("appsink", "").(gstapp.AppSink)
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pipeline.AddMany(src, sink)
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src.Link(sink)
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// Tell the appsink what format we want. It will then be the audiotestsrc's job to
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// provide the format we request.
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// This can be set after linking the two objects, because format negotiation between
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// both elements will happen during pre-rolling of the pipeline.
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sink.SetCaps(gst.CapsFromString(
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"audio/x-raw, format=S16LE, layout=interleaved, channels=1",
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))
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sink.ConnectNewSample(func(sink gstapp.AppSink) gst.FlowReturn {
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// Pull the sample that triggered this callback
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sample := sink.PullSample()
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if sample == nil {
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return gst.FlowEos
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}
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// Retrieve the buffer from the sample
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buffer := sample.GetBuffer()
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if buffer == nil {
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return gst.FlowError
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}
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// At this point, buffer is only a reference to an existing memory region somewhere.
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// When we want to access its content, we have to map it while requesting the required
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// mode of access (read, read/write).
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//
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// We also know what format to expect because we set it with the caps. So we convert
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// the map directly to signed 16-bit little-endian integers.
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mapInfo, ok := buffer.Map(gst.MapRead)
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if !ok {
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return gst.FlowError
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}
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defer mapInfo.Unmap()
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// Calculate the root mean square for the buffer
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// (https://en.wikipedia.org/wiki/Root_mean_square)
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samples := mapInfo.Int16Data(binary.LittleEndian)
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var square float64
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for _, i := range samples {
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square += float64(i * i)
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}
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rms := math.Sqrt(square / float64(len(samples)))
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fmt.Println("rms:", rms)
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return gst.FlowOK
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})
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return pipeline, nil
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}
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func handleMessage(msg *gst.Message) error {
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switch msg.Type() {
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case gst.MessageEos:
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return fmt.Errorf("end of stream")
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case gst.MessageError:
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debug, gerr := msg.ParseError()
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if debug != "" {
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fmt.Println(debug)
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}
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return gerr
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}
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return nil
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}
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func runPipeline(pipeline gst.Pipeline) error {
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// Start the pipeline
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pipeline.SetState(gst.StatePlaying)
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// Retrieve the bus from the pipeline
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bus := pipeline.GetBus()
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c := make(chan os.Signal, 1)
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signal.Notify(c, os.Interrupt)
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go func() {
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<-c
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pipeline.SendEvent(gst.NewEventEos())
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}()
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// Loop over messsages from the pipeline
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for {
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msg := bus.TimedPop(gst.ClockTimeNone)
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if msg == nil {
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break
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}
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if err := handleMessage(msg); err != nil {
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return err
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}
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}
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return nil
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}
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func main() {
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pipeline, err := createPipeline()
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if err != nil {
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println(err)
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return
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}
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err = runPipeline(pipeline)
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println(err)
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}
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@@ -1,8 +1,10 @@
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package gst
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import (
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"encoding/binary"
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"fmt"
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"io"
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"math"
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"runtime"
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"unsafe"
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)
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@@ -206,12 +208,152 @@ func (info *MapInfo) Length() int {
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return int(info.mapInfo.native.size)
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}
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// Length returns the length of the mapped memory.
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func (info *MapInfo) Data() []byte {
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return unsafe.Slice((*byte)(info.mapInfo.native.data), info.mapInfo.native.size)
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}
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// Flags returns the flags of the mapped memory.
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func (info *MapInfo) Flags() MapFlags {
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return MapFlags(info.mapInfo.native.flags)
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}
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// Data returns the mapped memory as a byte slice.
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func (info *MapInfo) Data() []byte {
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if info.mapInfo == nil {
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return nil
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}
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if !info.Flags().Has(MapRead) {
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return nil
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}
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return unsafe.Slice((*byte)(info.mapInfo.native.data), info.mapInfo.native.size)
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}
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// Float32Data returns a copy of the data as a slice of float32 with the given byte order (endianess).
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func (info *MapInfo) Float32Data(byteOrder binary.ByteOrder) []float32 {
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floats := make([]float32, info.Length()/4)
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for i := range floats {
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bits := byteOrder.Uint32(info.Data()[i*4 : (i+1)*4])
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floats[i] = math.Float32frombits(bits)
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}
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return floats
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}
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// Float64Data returns a copy of the data as a slice of float64 with the given byte order (endianess).
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func (info *MapInfo) Float64Data(byteOrder binary.ByteOrder) []float64 {
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floats := make([]float64, info.Length()/8)
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for i := range floats {
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bits := byteOrder.Uint64(info.Data()[i*8 : (i+1)*8])
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floats[i] = math.Float64frombits(bits)
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}
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return floats
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}
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// unsafeData is used to save on a cast to unsafe.Pointer in the ...Data() functions
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func (info *MapInfo) unsafeData() unsafe.Pointer {
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return unsafe.Pointer(info.mapInfo.native.data)
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}
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// Int8Data returns the mapped data as a slice of int8.
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func (info *MapInfo) Int8Data() []int8 {
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if info.mapInfo == nil {
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return nil
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}
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if !info.Flags().Has(MapRead) {
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return nil
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}
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return unsafe.Slice((*int8)(info.unsafeData()), info.mapInfo.native.size)
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}
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// Uint8Data returns the mapped data as a slice of uint8.
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func (info *MapInfo) Uint8Data() []uint8 {
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if info.mapInfo == nil {
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return nil
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}
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if !info.Flags().Has(MapRead) {
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return nil
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}
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return unsafe.Slice((*uint8)(info.unsafeData()), info.mapInfo.native.size)
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}
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// Uint16Data returns a copy of the data as a slice of uint16 with the given byte order (endianess).
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func (info *MapInfo) Uint16Data(byteOrder binary.ByteOrder) []uint16 {
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data := info.Data()
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ints := make([]uint16, len(data)/2)
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for i := range ints {
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bits := byteOrder.Uint16(data[i*2 : (i+1)*2])
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ints[i] = bits
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}
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return ints
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}
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// Int16Data returns a copy of the data as a slice of int16 with the given byte order (endianess).
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func (info *MapInfo) Int16Data(byteOrder binary.ByteOrder) []int16 {
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data := info.Data()
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ints := make([]int16, len(data)/2)
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for i := range ints {
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bits := byteOrder.Uint16(data[i*2 : (i+1)*2])
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ints[i] = int16(bits)
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}
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return ints
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}
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// Uint32Data returns a copy of the data as a slice of uint32 with the given byte order (endianess).
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func (info *MapInfo) Uint32Data(byteOrder binary.ByteOrder) []uint32 {
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data := info.Data()
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ints := make([]uint32, len(data)/4)
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for i := range ints {
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bits := byteOrder.Uint32(data[i*4 : (i+1)*4])
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ints[i] = bits
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}
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return ints
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}
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// Int32Data returns a copy of the data as a slice of int32 with the given byte order (endianess).
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func (info *MapInfo) Int32Data(byteOrder binary.ByteOrder) []int32 {
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data := info.Data()
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ints := make([]int32, len(data)/4)
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for i := range ints {
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bits := byteOrder.Uint32(data[i*4 : (i+1)*4])
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ints[i] = int32(bits)
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}
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return ints
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}
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// Uint64Data returns a copy of the data as a slice of uint64 with the given byte order (endianess).
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func (info *MapInfo) Uint64Data(byteOrder binary.ByteOrder) []uint64 {
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data := info.Data()
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ints := make([]uint64, len(data)/8)
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for i := range ints {
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bits := byteOrder.Uint64(data[i*8 : (i+1)*8])
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ints[i] = bits
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}
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return ints
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}
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// Int64Data returns a copy of the data as a slice of int64 with the given byte order (endianess).
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func (info *MapInfo) Int64Data(byteOrder binary.ByteOrder) []int64 {
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data := info.Data()
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ints := make([]int64, len(data)/8)
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for i := range ints {
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bits := byteOrder.Uint64(data[i*8 : (i+1)*8])
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ints[i] = int64(bits)
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}
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return ints
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}
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