176 lines
7.1 KiB
JavaScript
176 lines
7.1 KiB
JavaScript
var XMPlayer = window.XMPlayer;
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// TODO:
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// - portamento 3xx
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// - vibrato 4xy
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// - volume slide Axy
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// - porta+vol 5xy
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// - etc etc
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exports['test 0xy arpeggio'] = function(assert) {
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var xm = testdata.resetXMData();
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// [pat][row][channel]
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xm.patterns[0][0][0] = [48, 1, -1, 0, 0x4f]; // C-4 1 -- 04f
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XMPlayer.xm.tempo = 4;
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XMPlayer.nextTick();
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var ch = xm.channelinfo[0];
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assert.equal(ch.note, 48, 'note 0');
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assert.equal(ch.period, 1152, 'row 0 tick 0 period 0');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 16*4, 'row 0 tick 1 period 4');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 16*15, 'row 0 tick 2 period f');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 16*0, 'row 0 tick 3 period 0');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 16*0, 'row 1 tick 0 period 0');
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};
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exports['test 1xx slide up'] = function(assert) {
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var xm = testdata.resetXMData();
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// [pat][row][channel]
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xm.patterns[0][0][0] = [48, 1, -1, 1, 0x01]; // C-4 1 -- 101
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xm.patterns[0][1][0] = [-1, -1, -1, 1, 0x00]; // --- -- -- 100
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XMPlayer.xm.tempo = 3;
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XMPlayer.nextTick();
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var ch = xm.channelinfo[0];
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assert.equal(ch.period, 1152, 'row 0 tick 0 period 0');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 1, 'row 0 tick 1 period -1');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 2, 'row 0 tick 2 period -2');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 2, 'row 1 tick 0 period -2');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 3, 'row 1 tick 1 period -3');
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};
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exports['test 2xx slide down'] = function(assert) {
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var xm = testdata.resetXMData();
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// [pat][row][channel]
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xm.patterns[0][0][0] = [48, 1, -1, 2, 0x01]; // C-4 1 -- 201
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xm.patterns[0][1][0] = [-1, -1, -1, 2, 0x00]; // --- -- -- 200
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XMPlayer.xm.tempo = 3;
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XMPlayer.nextTick();
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var ch = xm.channelinfo[0];
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assert.equal(ch.period, 1152, 'row 0 tick 0 period 0');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 + 1, 'row 0 tick 1 period +1');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 + 2, 'row 0 tick 2 period +2');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 + 2, 'row 1 tick 0 period +2');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 + 3, 'row 1 tick 1 period +3');
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};
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exports['test 3xx portamento'] = function(assert) {
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var xm = testdata.resetXMData();
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// [pat][row][channel]
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xm.patterns[0][0][0] = [48, 1, -1, 0, 0x00]; // C-4 1 -- 000
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xm.patterns[0][1][0] = [49, 1, -1, 3, 0x09]; // C#4 1 -- 309
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XMPlayer.xm.tempo = 3;
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XMPlayer.nextTick(); // row 0 tick 0
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var ch = xm.channelinfo[0];
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assert.equal(ch.period, 1152, 'row 0 tick 0 period 0');
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XMPlayer.nextTick(); // row 0 tick 1
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XMPlayer.nextTick(); // row 0 tick 2
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XMPlayer.nextTick(); // row 1 tick 0
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assert.equal(ch.period, 1152, 'row 1 tick 0 period 0');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 9, 'row 1 tick 1 period -9');
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XMPlayer.nextTick();
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assert.equal(ch.period, 1152 - 16, 'row 1 tick 2 period -16');
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};
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exports['test 4xy vibrato'] = function(assert) {
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var xm = testdata.resetXMData();
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// vibrato 4xy: speed x, depth y
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// full cycle is 64/speed
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// [pat][row][channel]
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xm.patterns[0] = [
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[[48, 1, -1, 4, 0x81]], // C-4 1 -- 481
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[[-1, -1, -1, 4, 0x02]], // --- -- -- 402
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[[-1, -1, -1, 4, 0x10]], // --- -- -- 410
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[[-1, -1, -1, 4, 0x00]], // --- -- -- 400
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[[-1, -1, -1, 0, 0x00]], // --- -- -- 000 - no vibrato
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[[-1, -1, -1, 4, 0x00]], // --- -- -- 400 - resume vibrato @ pos 0
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];
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// I should really be testing ch.doff directly
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XMPlayer.xm.tempo = 3;
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var ch = xm.channelinfo[0];
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XMPlayer.nextTick(); // row 0 tick 0
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var p0 = ch.doff;
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assert.equal(ch.periodoffset, 0, 'row 0 tick 0 periodoffset=0');
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XMPlayer.nextTick(); // row 0 tick 1
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// compute logical period p from actual play frequency
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var p = 16*12 * Math.log(p0 / ch.doff) / Math.log(2);
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assert.equal(p.toFixed(3), "0.707", 'row 0 tick 1 period +0.707');
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XMPlayer.nextTick(); // row 0 tick 2
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "1.000", 'row 0 tick 2 period +1.000');
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XMPlayer.nextTick(); // row 1 tick 0
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "1.414", 'row 1 tick 0 period +1.414');
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XMPlayer.nextTick(); // row 1 tick 1
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "0.000", 'row 1 tick 1 period +0');
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XMPlayer.nextTick(); // row 1 tick 2
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.414", 'row 1 tick 2 period -1.414');
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XMPlayer.nextTick(); // row 2 tick 0
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-2.000", 'row 2 tick 0 period -2.000');
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XMPlayer.nextTick(); // row 2 tick 1
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.990", 'row 2 tick 1 period -1.990');
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XMPlayer.nextTick(); // row 2 tick 2
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.962", 'row 2 tick 2 period -1.962');
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XMPlayer.nextTick(); // row 3 tick 0
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.914", 'row 3 tick 0 period -1.914');
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XMPlayer.nextTick(); // row 3 tick 1
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.848", 'row 3 tick 1 period -1.848');
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XMPlayer.nextTick(); // row 3 tick 2
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.764", 'row 3 tick 2 period -1.764');
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XMPlayer.nextTick(); // row 4 tick 0
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "0.000", 'row 4 tick 0 period 0 - no vibrato');
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XMPlayer.nextTick(); // row 4 tick 1
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XMPlayer.nextTick(); // row 4 tick 2
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// I actually don't know whether vibrato is supposed to reset when the effect
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// goes away or whether it should resume. Resuming is simpler to implement so
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// that's what I'm assuming here...
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XMPlayer.nextTick(); // row 5 tick 0
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.663", 'row 5 tick 0 period -1.663 - vibrato resume');
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XMPlayer.nextTick(); // row 5 tick 1
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p = -16*12 * Math.log(ch.doff / p0) / Math.log(2);
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assert.equal(p.toFixed(3), "-1.546", 'row 5 tick 1 period -1.546');
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};
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exports['test Gxx global volume'] = function(assert) {
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var xm = testdata.resetXMData();
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// [pat][row][channel]
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// 1 channel, 3 row blank pattern
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xm.patterns = [
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[
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[[48, 1, -1, 16, 0x40]], // C-4 1 -- G40
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[[48, 1, -1, 16, 0x2B]], // C-4 1 -- G2B
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// test out of bounds volume
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[[48, 1, -1, 16, 0x80]] // C-4 1 -- G80
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]
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];
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XMPlayer.xm.tempo = 1;
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XMPlayer.nextTick();
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// volume gets multiplied by 2 to match
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// the initial max global volume of 128
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assert.equal(XMPlayer.xm.global_volume, 0x40*2, 'global volume set to 0x40');
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XMPlayer.nextTick();
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assert.equal(XMPlayer.xm.global_volume, 0x2B*2, 'global volume set to 0x2B');
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XMPlayer.nextTick();
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assert.equal(XMPlayer.xm.global_volume, 0x40*2, 'global volume set to 0x40');
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};
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