package tiny_libs
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From-scratch libraries for teaching: graphics, audio, compression, crypto, networking and more
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dune-project
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0.3.6.tar.gz
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doc/src/tiny_libs.audio_mpeg/Layer3.ml.html
Source file Layer3.ml
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MPEG-2's lower rates: scalefac_compress of 9 bits, and no * preflag bit (the scalefactors' coding says it, [preflag_lsf]) *) let granule ~(mpeg1 : bool) ~(preflag_lsf : int -> bool) (b : Bits.t) : granule = let read = Bits.read b in let part2_3_length = read 12 in let big_values = read 9 in let global_gain = read 8 in let scalefac_compress = read (if mpeg1 then 4 else 9) in let switching = read 1 = 1 in let block_type, mixed, table_select, subblock_gain, region0_count, region1_count = if switching then ( let block_type = read 2 in let mixed = read 1 = 1 in let t0 = read 5 in let t1 = read 5 in let g0 = read 3 in let g1 = read 3 in let g2 = read 3 in (* the regions implicit: region 1 to the end *) let region0_count = if block_type = 2 && not mixed then 8 else 7 in (block_type, mixed, [| t0; t1; 0 |], [| g0; g1; g2 |], region0_count, 20 - region0_count)) else let t0 = read 5 in let t1 = read 5 in let t2 = read 5 in let region0_count = read 4 in let region1_count = read 3 in (0, false, [| t0; t1; t2 |], [| 0; 0; 0 |], region0_count, region1_count) in let preflag = if mpeg1 then read 1 = 1 else preflag_lsf scalefac_compress in let scalefac_scale = read 1 = 1 in let count1_table = read 1 in { part2_3_length; big_values; global_gain; scalefac_compress; block_type; mixed; table_select; subblock_gain; region0_count; region1_count; preflag; scalefac_scale; count1_table } (* intensity stereo's right channel codes its scalefactors (directions, * not loudnesses) its own way, in MPEG-2 *) let intensity_right (h : Mpeg_audio_header.t) (ch : int) : bool = ch = 1 && h.mode = Mpeg_audio_header.Joint_stereo && h.mode_extension land 1 <> 0 let side_info (h : Mpeg_audio_header.t) (b : Bits.t) : side_info = let nch = h.channels and mpeg1 = h.version = Mpeg_audio_header.Mpeg1 in (* MPEG-2: a smaller reservoir, one granule, no scfsi *) let main_data_begin = Bits.read b (if mpeg1 then 9 else 8) in Bits.skip b (match (mpeg1, nch) with true, 1 -> 5 | true, _ -> 3 | false, 1 -> 1 | false, _ -> 2) (* private bits *); let scfsi = Array.init nch (fun _ -> Array.init 4 (fun _ -> mpeg1 && Bits.read b 1 = 1)) in let granules = Array.init (if mpeg1 then 2 else 1) (fun _ -> Array.init nch (fun ch -> granule ~mpeg1 ~preflag_lsf:(fun sfc -> sfc >= 500 && not (intensity_right h ch)) b)) in { main_data_begin; scfsi; granules } (*****************************************************************************) (* Part 2: the scalefactors *) (*****************************************************************************) (* into [long] (22 bands, kept from granule to granule: scfsi) and * [short] (13 bands of 3 windows) *) let scalefactors (b : Bits.t) (g : granule) (scfsi : bool array) (gr : int) (long : int array) (short : int array array) : unit = let slen1, slen2 = Layer3_tables.slen.(g.scalefac_compress) in if g.block_type = 2 then ( (* mixed: the long bands of the 2 lowest subbands, then the short * bands from 3 up *) if g.mixed then for sfb = 0 to 7 do long.(sfb) <- Bits.read b slen1 done; for sfb = (if g.mixed then 3 else 0) to 11 do for w = 0 to 2 do short.(sfb).(w) <- Bits.read b (if sfb < 6 then slen1 else slen2) done done; short.(12) <- [| 0; 0; 0 |]) else ( (* 4 groups of bands, each read, or reused from granule 0 *) [| (0, 5); (6, 10); (11, 15); (16, 20) |] |> Array.iteri (fun i (first, last) -> if gr = 0 || not scfsi.(i) then for sfb = first to last do long.(sfb) <- Bits.read b (if i < 2 then slen1 else slen2) done); long.(21) <- 0) (* MPEG-2's (ISO/IEC 13818-3, 2.4.3.2): scalefac_compress, 9 bits, * picks one of 3 codings -- 6 for intensity stereo's right channel -- * each giving the bits (slen) of 4 partitions of bands, and how many * bands each has; read in the bands' order (a short band's 3 windows * in turn, the long bands first in a mixed block) *) let scalefactors_lsf (b : Bits.t) (g : granule) ~(intensity_right : bool) (long : int array) (short : int array array) : unit = let c = g.scalefac_compress in let coding, slen = if not intensity_right then (* parenthesized: lsr binds tighter than land and mod *) if c < 400 then (0, [| (c lsr 4) / 5; (c lsr 4) mod 5; (c land 15) lsr 2; c land 3 |]) else if c < 500 then let c = c - 400 in (1, [| (c lsr 2) / 5; (c lsr 2) mod 5; c land 3; 0 |]) else let c = c - 500 in (2, [| c / 3; c mod 3; 0; 0 |]) else let c = c lsr 1 in if c < 180 then (3, [| c / 36; c mod 36 / 6; c mod 36 mod 6; 0 |]) else if c < 244 then let c = c - 180 in (4, [| (c mod 64) lsr 4; (c mod 16) lsr 2; c land 3; 0 |]) else let c = c - 244 in (5, [| c / 3; c mod 3; 0; 0 |]) in let block = if g.block_type <> 2 then 0 else if g.mixed then 2 else 1 in let values = ref [] in Array.iteri (fun part count -> for _ = 1 to count do values := Bits.read b slen.(part) :: !values done) Layer3_tables.nr_of_sfb.(coding).(block); (* the i-th value, in the bands' order, to its band *) Array.fill long 0 22 0; Array.iter (fun w -> Array.fill w 0 3 0) short; List.iteri (fun i v -> match block with | 0 -> long.(i) <- v | 1 -> short.(i / 3).(i mod 3) <- v | _ -> if i < 6 then long.(i) <- v else short.(3 + ((i - 6) / 3)).((i - 6) mod 3) <- v) (List.rev !values) (*****************************************************************************) (* Part 3: the Huffman codes *) (*****************************************************************************) let tree (codes : string array) (size : int) : (int * int) Vlc.t = Vlc.of_list (List.mapi (fun i code -> (code, (i / size, i mod size))) (Array.to_list codes)) let pair_trees : ((int * int) Vlc.t * int) option Lazy.t array = Array.map (fun t -> lazy (Option.map (fun (codes, size, linbits) -> (tree codes size, linbits)) t)) Layer3_tables.pairs let quad_trees = let quad codes = lazy (Vlc.of_list (List.mapi (fun i code -> (code, i)) (Array.to_list codes))) in [| quad Layer3_tables.quad_a; quad Layer3_tables.quad_b |] (* the 576 integers into [is], until the bit [last]; the lines after * the count1 region are zeros *) let huffman (b : Bits.t) (g : granule) (rate : int) (last : int) (is : int array) : unit = Array.fill is 0 576 0; let bands = Layer3_tables.long_bands rate in let big = min 576 (2 * g.big_values) in (* the 3 regions of the big values, each its table *) let region1, region2 = (* short blocks: region 0 the first 3 short bands (36 lines at * MPEG-1's rates), region 1 the rest *) if g.block_type = 2 then ((if g.mixed then bands.(8) else 3 * (Layer3_tables.short_bands rate).(3)), 576) else (bands.(min 22 (g.region0_count + 1)), bands.(min 22 (g.region0_count + g.region1_count + 2))) in let i = ref 0 in while !i < big do let table = g.table_select.(if !i < region1 then 0 else if !i < region2 then 1 else 2) in (match Lazy.force pair_trees.(table) with | None -> () | Some (tree, linbits) -> let x, y = Vlc.read b tree in (* 15 and linbits more; then the sign *) let value v = let v = if linbits > 0 && v = 15 then v + Bits.read b linbits else v in if v <> 0 && Bits.read b 1 = 1 then -v else v in let x = value x in is.(!i) <- x; is.(!i + 1) <- value y); i := !i + 2 done; (* count1: quadruples of 0s and 1s, until the part's bits are used *) let quads = Lazy.force quad_trees.(g.count1_table) in while Bits.position b < last && !i + 4 <= 576 do let q = Vlc.read b quads in for k = 0 to 3 do let v = (q lsr (3 - k)) land 1 in is.(!i + k) <- (if v <> 0 && Bits.read b 1 = 1 then -1 else v) done; i := !i + 4 done; (* past the end: the last quadruple was the stuffing's bits *) if Bits.position b > last && !i >= 4 then Array.fill is (!i - 4) 4 0 (*****************************************************************************) (* Requantization *) (*****************************************************************************) (* |is|^(4/3), for the integers a code (and its linbits) can give *) let pow43 = lazy (Array.init 8207 (fun i -> float_of_int i ** (4. /. 3.))) let requantize (g : granule) (rate : int) (long : int array) (short : int array array) (is : int array) : float array = let pow43 = Lazy.force pow43 in let xr = Array.make 576 0. in let gain = 2. ** (0.25 *. float_of_int (g.global_gain - 210)) in let multiplier = if g.scalefac_scale then 1. else 0.5 in let line i scale = let v = is.(i) in let r = pow43.(abs v) *. gain *. scale in xr.(i) <- (if v < 0 then -.r else r) in let long_band sfb first last = let pre = if g.preflag then Layer3_tables.pretab.(sfb) else 0 in let scale = 2. ** (-.multiplier *. float_of_int (long.(sfb) + pre)) in for i = first to last - 1 do line i scale done in let lb = Layer3_tables.long_bands rate in if g.block_type = 2 then ( let sb = Layer3_tables.short_bands rate in (* mixed: the long bands below line 36 (the 2 lowest subbands) *) if g.mixed then for sfb = 0 to 21 do if lb.(sfb + 1) <= 36 then long_band sfb lb.(sfb) lb.(sfb + 1) done; (* short bands: each window's lines one after the other *) for sfb = (if g.mixed then 3 else 0) to 12 do let width = sb.(sfb + 1) - sb.(sfb) in for w = 0 to 2 do let scale = 2. ** (-2. *. float_of_int g.subblock_gain.(w)) *. 2. ** (-.multiplier *. float_of_int short.(sfb).(w)) in for f = 0 to width - 1 do line ((3 * sb.(sfb)) + (w * width) + f) scale done done done) else for sfb = 0 to 21 do long_band sfb lb.(sfb) lb.(sfb + 1) done; xr (*****************************************************************************) (* Stereo, reordering, alias reduction *) (*****************************************************************************) (* intensity stereo's directions, line by line, from the right channel's * scalefactors, above the last band where its spectrum isn't zero (per * window in short blocks); 7 where a line isn't intensity-coded. The * last band, which has no scalefactor, takes the one below it's * (2.4.3.4.9.3; MPEG-1's, MPEG-2's variant not done) *) let intensity_positions (g : granule) (rate : int) (right : float array) (long : int array) (short : int array array) : int array = let positions = Array.make 576 7 in let lb = Layer3_tables.long_bands rate and sb = Layer3_tables.short_bands rate in let set first last p = Array.fill positions first (last - first) p in if g.block_type = 2 then ( let first_short = if g.mixed then 3 else 0 in let all_windows_empty = ref true in for w = 0 to 2 do (* the highest short band with a line of this window not zero *) let top = ref (-1) in for sfb = first_short to 12 do let width = sb.(sfb + 1) - sb.(sfb) in for f = 0 to width - 1 do if right.((3 * sb.(sfb)) + (w * width) + f) <> 0. then top := sfb done done; if !top >= 0 then all_windows_empty := false; for sfb = max (!top + 1) first_short to 12 do let width = sb.(sfb + 1) - sb.(sfb) in let start = (3 * sb.(sfb)) + (w * width) in let p = if sfb < 12 then short.(sfb).(w) else if !top < 11 then short.(11).(w) else 7 in set start (start + width) p done done; (* a mixed block's long bands, when the short ones are all intensity *) if g.mixed && !all_windows_empty then for sfb = 0 to 21 do if lb.(sfb + 1) <= 36 then set lb.(sfb) lb.(sfb + 1) long.(sfb) done) else ( (* the band after the one holding the highest line not zero *) let last = ref (-1) in Array.iteri (fun i v -> if v <> 0. then last := i) right; let first = ref 0 in while !first < 22 && lb.(!first) <= !last do incr first done; for sfb = !first to 21 do set lb.(sfb) lb.(sfb + 1) (if sfb < 21 then long.(sfb) else if !first <= 20 then long.(20) else 7) done); positions (* joint stereo back to left and right, line by line: an intensity * line's single spectrum (sent in the left channel) split between the * two by its direction, ratio tan(is_pos pi / 12) -- 0 all right, 6 * all left; the other lines, mid/side if on: M = (L + R) / sqrt 2, S = * (L - R) / sqrt 2 *) let joint_stereo ~(mid_side : bool) (positions : int array) (left : float array) (right : float array) : unit = for i = 0 to 575 do let p = positions.(i) in if p <> 7 then ( let ratio = tan (float_of_int p *. Float.pi /. 12.) in let v = left.(i) in left.(i) <- v *. ratio /. (1. +. ratio); right.(i) <- v /. (1. +. ratio)) else if mid_side then ( let m = left.(i) and s = right.(i) in left.(i) <- (m +. s) /. sqrt 2.; right.(i) <- (m -. s) /. sqrt 2.) done (* short blocks: from each band's window after window, to each line's 3 * windows side by side -- a subband's 18 values then 6 lines of 3 * windows, what the IMDCT of each window picks from *) let reorder (g : granule) (rate : int) (xr : float array) : unit = if g.block_type = 2 then ( let sb = Layer3_tables.short_bands rate in let src = Array.copy xr in for sfb = (if g.mixed then 3 else 0) to 12 do let start = sb.(sfb) and width = sb.(sfb + 1) - sb.(sfb) in for w = 0 to 2 do for f = 0 to width - 1 do xr.((3 * (start + f)) + w) <- src.((3 * start) + (w * width) + f) done done done) (* the encoder's filterbank lets neighbouring subbands overlap; 8 * butterflies across each border undo what it mixed (Table B.9) *) let ci = [| -0.6; -0.535; -0.33; -0.185; -0.095; -0.041; -0.0142; -0.0037 |] let cs = Array.map (fun c -> 1. /. sqrt (1. +. (c *. c))) ci let ca = Array.map (fun c -> c /. sqrt (1. +. (c *. c))) ci let antialias (g : granule) (xr : float array) : unit = let borders = if g.block_type = 2 then if g.mixed then 1 else 0 else 31 in for sb = 1 to borders do for k = 0 to 7 do let lo = (18 * sb) - 1 - k and hi = (18 * sb) + k in let bu = xr.(lo) and bd = xr.(hi) in xr.(lo) <- (bu *. cs.(k)) -. (bd *. ca.(k)); xr.(hi) <- (bd *. cs.(k)) +. (bu *. ca.(k)) done done (*****************************************************************************) (* IMDCT, overlap-add *) (*****************************************************************************) (* each subband's 18 lines into 18 time slots of it, in [out] from slot * [slot]: the IMDCT's first half added to the last block's second *) let hybrid (g : granule) (xr : float array) (overlap : float array array) (out : float array) (slot : int) : unit = for sb = 0 to 31 do let block_type = if g.block_type = 2 && g.mixed && sb < 2 then 0 else g.block_type in let z = if block_type = 2 then ( (* 3 short IMDCTs, 6 samples apart, from sample 6 *) let z = Array.make 36 0. and win = Imdct.window 2 in for w = 0 to 2 do let y = Imdct.imdct (Array.init 6 (fun k -> xr.((18 * sb) + (3 * k) + w))) in for i = 0 to 11 do z.(6 + (6 * w) + i) <- z.(6 + (6 * w) + i) +. (y.(i) *. win.(i)) done done; z) else let win = Imdct.window block_type in Array.mapi (fun i v -> v *. win.(i)) (Imdct.imdct (Array.sub xr (18 * sb) 18)) in for i = 0 to 17 do let v = z.(i) +. overlap.(sb).(i) in (* the odd subbands' odd samples negated: the encoder's * filterbank left them frequency-inverted *) out.(((slot + i) * 32) + sb) <- (if sb land 1 = 1 && i land 1 = 1 then -.v else v); overlap.(sb).(i) <- z.(i + 18) done done (*****************************************************************************) (* A frame *) (*****************************************************************************) type state = { mutable reservoir : string; (* the last frames' main data, 511 bytes at most *) overlap : float array array array; (* per channel, per subband, 18 *) long : int array array; (* per channel, the long bands' scalefactors *) } let create () : state = { reservoir = ""; overlap = Array.init 2 (fun _ -> Array.make_matrix 32 18 0.); long = Array.make_matrix 2 22 0 } let decode (st : state) (h : Mpeg_audio_header.t) (file : string) (at : int) : float array array = let nch = h.channels and mpeg1 = h.version = Mpeg_audio_header.Mpeg1 in let granules = if mpeg1 then 2 else 1 in let header = 4 + if h.crc then 2 else 0 in let bits = Bits.of_string file in Bits.seek bits (8 * (at + header)); let si = side_info h bits in let side_bytes = match (mpeg1, nch) with true, 1 -> 17 | true, _ -> 32 | false, 1 -> 9 | false, _ -> 17 in let data_start = at + header + side_bytes in let data = String.sub file data_start (max 0 (at + h.length - data_start)) in let start = String.length st.reservoir - si.main_data_begin in let main = st.reservoir ^ data in st.reservoir <- String.sub main (max 0 (String.length main - 511)) (min 511 (String.length main)); let out = Array.init nch (fun _ -> Array.make (granules * 18 * 32) 0.) in if start >= 0 then ( let b = Bits.of_string main in Bits.seek b (8 * start); for gr = 0 to granules - 1 do let shorts = Array.init nch (fun _ -> Array.make_matrix 13 3 0) in let xr = Array.init nch (fun ch -> let g = si.granules.(gr).(ch) in let part = Bits.position b in let short = shorts.(ch) in if mpeg1 then scalefactors b g si.scfsi.(ch) gr st.long.(ch) short else scalefactors_lsf b g ~intensity_right:(intensity_right h ch) st.long.(ch) short; let is = Array.make 576 0 in huffman b g h.sample_rate (part + g.part2_3_length) is; Bits.seek b (part + g.part2_3_length); requantize g h.sample_rate st.long.(ch) short is) in if h.mode = Mpeg_audio_header.Joint_stereo && h.mode_extension <> 0 then ( let g = si.granules.(gr).(1) in let positions = (* MPEG-2's intensity stereo codes its directions another way: * not done, its lines left as they are *) if h.mode_extension land 1 <> 0 && mpeg1 then intensity_positions g h.sample_rate xr.(1) st.long.(1) shorts.(1) else Array.make 576 7 in joint_stereo ~mid_side:(h.mode_extension land 2 <> 0) positions xr.(0) xr.(1)); for ch = 0 to nch - 1 do let g = si.granules.(gr).(ch) in reorder g h.sample_rate xr.(ch); antialias g xr.(ch); hybrid g xr.(ch) st.overlap.(ch) out.(ch) (18 * gr) done done); out
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