/*
* SAC/UDA 1341 Audio driver for the Bitsy
*
* The Philips UDA 1341 sound chip is accessed through the Serial Audio
* Controller (SAC) of the StrongARM SA-1110. This is much more a SAC
* controller than a UDA controller, but we have a devsac.c already.
*
* The code morphs Nicolas Pitre's <nico@cam.org> Linux controller
* and Ken's Soundblaster controller.
*
* The interface should be identical to that of devaudio.c
*/
#include "u.h"
#include "../port/lib.h"
#include "mem.h"
#include "dat.h"
#include "fns.h"
#include "../port/error.h"
#include "io.h"
/*
* GPIO based L3 bus support.
*
* This provides control of Philips L3 type devices.
* GPIO lines are used for clock, data and mode pins.
*
* Note: The L3 pins are shared with I2C devices. This should not present
* any problems as long as an I2C start sequence is not generated. This is
* defined as a 1->0 transition on the data lines when the clock is high.
* It is critical this code only allow data transitions when the clock
* is low. This is always legal in L3.
*
* The IIC interface requires the clock and data pin to be LOW when idle. We
* must make sure we leave them in this state.
*
* It appears the read data is generated on the falling edge of the clock
* and should be held stable during the clock high time.
*/
/*
* L3 setup and hold times (expressed in us)
*/
#define L3_DataSetupTime 1 /* 190 ns */
#define L3_DataHoldTime 1 /* 30 ns */
#define L3_ModeSetupTime 1 /* 190 ns */
#define L3_ModeHoldTime 1 /* 190 ns */
#define L3_ClockHighTime 100 /* 250 ns (min is 64*fs, 35us @ 44.1 Khz) */
#define L3_ClockLowTime 100 /* 250 ns (min is 64*fs, 35us @ 44.1 Khz) */
#define L3_HaltTime 1 /* 190 ns */
/* UDA 1341 Registers */
enum {
/* Status0 register */
UdaStatusDC = 0, /* 1 bit */
UdaStatusIF = 1, /* 3 bits */
UdaStatusSC = 4, /* 2 bits */
UdaStatusRST = 6, /* 1 bit */
};
enum {
/* Status1 register */
UdaStatusPC = 0, /* 2 bits */
UdaStatusDS = 2, /* 1 bit */
UdaStatusPDA = 3, /* 1 bit */
UdaStatusPAD = 4, /* 1 bit */
UdaStatusIGS = 5, /* 1 bit */
UdaStatusOGS = 6, /* 1 bit */
};
/*
* UDA1341 L3 address and command types
*/
#define UDA1341_L3Addr 5
#define UDA1341_DATA0 0
#define UDA1341_DATA1 1
#define UDA1341_STATUS 2
typedef struct AQueue AQueue;
typedef struct Buf Buf;
enum
{
Qdir = 0,
Qaudio,
Qvolume,
Qstatus,
Fmono = 1,
Fin = 2,
Fout = 4,
Aclosed = 0,
Aread,
Awrite,
Vaudio = 0,
Vsynth,
Vcd,
Vline,
Vmic,
Vspeaker,
Vtreb,
Vbass,
Vspeed,
Nvol,
Bufsize = 16*1024, /* 92 ms each */
Nbuf = 16, /* 1.5 seconds total */
Speed = 44100,
Ncmd = 50, /* max volume command words */
};
Dirtab
audiodir[] =
{
"audio", {Qaudio}, 0, 0666,
"volume", {Qvolume}, 0, 0666,
"audiostat",{Qstatus}, 0, 0444,
};
struct Buf
{
uchar* virt;
ulong phys;
Buf* next;
};
struct AQueue
{
Lock;
Buf* first;
Buf* last;
};
static struct
{
QLock;
Rendez vous;
int bufinit; /* boolean if buffers allocated */
int curcount; /* how much data in current buffer */
int active; /* boolean dma running */
int intr; /* boolean an interrupt has happened */
int amode; /* Aclosed/Aread/Awrite for /audio */
int rivol[Nvol]; /* right/left input/output volumes */
int livol[Nvol];
int rovol[Nvol];
int lovol[Nvol];
int major; /* SB16 major version number (sb 4) */
int minor; /* SB16 minor version number */
ulong totcount; /* how many bytes processed since open */
vlong tottime; /* time at which totcount bytes were processed */
Buf buf[Nbuf]; /* buffers and queues */
AQueue empty;
AQueue full;
Buf* current;
Buf* filling;
} input, output;
static struct
{
QLock;
Rendez vous;
int bufinit; /* boolean if buffers allocated */
int curcount; /* how much data in current buffer */
int active; /* boolean dma running */
int intr; /* boolean an interrupt has happened */
int amode; /* Aclosed/Aread/Awrite for /audio */
int rivol[Nvol]; /* right/left input/output volumes */
int livol[Nvol];
int rovol[Nvol];
int lovol[Nvol];
int major; /* SB16 major version number (sb 4) */
int minor; /* SB16 minor version number */
ulong totcount; /* how many bytes processed since open */
vlong tottime; /* time at which totcount bytes were processed */
Buf buf[Nbuf]; /* buffers and queues */
AQueue empty;
AQueue full;
Buf* current;
Buf* filling;
} audio;
static struct
{
char* name;
int flag;
int ilval; /* initial values */
int irval;
} volumes[] =
{
[Vaudio] "audio", Fout, 50, 50,
[Vsynth] "synth", Fin|Fout, 0, 0,
[Vcd] "cd", Fin|Fout, 0, 0,
[Vline] "line", Fin|Fout, 0, 0,
[Vmic] "mic", Fin|Fout|Fmono, 0, 0,
[Vspeaker] "speaker", Fout|Fmono, 0, 0,
[Vtreb] "treb", Fout, 50, 50,
[Vbass] "bass", Fout, 50, 50,
[Vspeed] "speed", Fin|Fout|Fmono, Speed, Speed,
0
};
/*
* Grab control of the IIC/L3 shared pins
*/
static void L3_acquirepins(void)
{
GPSR = (GPIO_L3_SCLK_o | GPIO_L3_SDA_io);
GPDR |= (GPIO_L3_SCLK_o | GPIO_L3_SDA_io);
}
/*
* Release control of the IIC/L3 shared pins
*/
static void L3_releasepins(void)
{
GPDR &= ~(GPIO_L3_SCLK_o | GPIO_L3_SDA_io);
GPCR = (GPIO_L3_SCLK_o | GPIO_L3_SDA_io);
}
/*
* Initialize the interface
*/
static void __init L3_init(void)
{
GAFR &= ~(GPIO_L3_SDA_io | GPIO_L3_SCLK_o | GPIO_L3_MODE_o);
GPSR = GPIO_L3_MODE_o;
GPDR |= GPIO_L3_MODE_o;
L3_releasepins();
}
/*
* Get a bit. The clock is high on entry and on exit. Data is read after
* the clock low time has expired.
*/
static int L3_getbit(void)
{
int data;
GPCR = GPIO_L3_SCLK_o;
udelay(L3_ClockLowTime);
data = (GPLR & GPIO_L3_SDA_io) ? 1 : 0;
GPSR = GPIO_L3_SCLK_o;
udelay(L3_ClockHighTime);
return data;
}
/*
* Send a bit. The clock is high on entry and on exit. Data is sent only
* when the clock is low (I2C compatibility).
*/
static void L3_sendbit(int bit)
{
GPCR = GPIO_L3_SCLK_o;
if (bit & 1)
GPSR = GPIO_L3_SDA_io;
else
GPCR = GPIO_L3_SDA_io;
/* Assumes L3_DataSetupTime < L3_ClockLowTime */
udelay(L3_ClockLowTime);
GPSR = GPIO_L3_SCLK_o;
udelay(L3_ClockHighTime);
}
/*
* Send a byte. The mode line is set or pulsed based on the mode sequence
* count. The mode line is high on entry and exit. The mod line is pulsed
* before the second data byte and before ech byte thereafter.
*/
static void L3_sendbyte(char data, int mode)
{
int i;
L3_acquirepins();
switch(mode) {
case 0: /* Address mode */
GPCR = GPIO_L3_MODE_o;
break;
case 1: /* First data byte */
break;
default: /* Subsequent bytes */
GPCR = GPIO_L3_MODE_o;
udelay(L3_HaltTime);
GPSR = GPIO_L3_MODE_o;
break;
}
udelay(L3_ModeSetupTime);
for (i = 0; i < 8; i++)
L3_sendbit(data >> i);
if (mode == 0) /* Address mode */
GPSR = GPIO_L3_MODE_o;
udelay(L3_ModeHoldTime);
L3_releasepins();
}
/*
* Get a byte. The mode line is set or pulsed based on the mode sequence
* count. The mode line is high on entry and exit. The mod line is pulsed
* before the second data byte and before each byte thereafter. This
* function is never valid with mode == 0 (address cycle) as the address
* is always sent on the bus, not read.
*/
static char L3_getbyte(int mode)
{
char data = 0;
int i;
L3_acquirepins();
GPDR &= ~(GPIO_L3_SDA_io);
switch(mode) {
case 0: /* Address mode - never valid */
break;
case 1: /* First data byte */
break;
default: /* Subsequent bytes */
GPCR = GPIO_L3_MODE_o;
udelay(L3_HaltTime);
GPSR = GPIO_L3_MODE_o;
break;
}
udelay(L3_ModeSetupTime);
for (i = 0; i < 8; i++)
data |= (L3_getbit() << i);
udelay(L3_ModeHoldTime);
L3_releasepins();
return data;
}
/*
* Write data to a device on the L3 bus. The address is passed as well as
* the data and length. The length written is returned. The register space
* is encoded in the address (low two bits are set and device address is
* in the upper 6 bits).
*/
static int L3_write(char addr, char *data, int len)
{
int mode = 0;
int bytes = len;
L3_sendbyte(addr, mode++);
while(len--)
L3_sendbyte(*data++, mode++);
return bytes;
}
/*
* Read data from a device on the L3 bus. The address is passed as well as
* the data and length. The length read is returned. The register space
* is encoded in the address (low two bits are set and device address is
* in the upper 6 bits).
*/
static int L3_read(char addr, char * data, int len)
{
int mode = 0;
int bytes = len;
L3_sendbyte(addr, mode++);
while(len--)
*data++ = L3_getbyte(mode++);
return bytes;
}
static char Emode[] = "illegal open mode";
static char Evolume[] = "illegal volume specifier";
static Buf*
getbuf(AQueue *q)
{
Buf *b;
ilock(q);
b = q->first;
if(b)
q->first = b->next;
iunlock(q);
return b;
}
static void
putbuf(AQueue *q, Buf *b)
{
ilock(q);
b->next = 0;
if(q->first)
q->last->next = b;
else
q->first = b;
q->last = b;
iunlock(q);
}
static void
audioinit(void)
{
int err;
/* Acquire and initialize DMA */
if( audio_init_dma( &output_stream, "UDA1341 DMA out" ) ||
audio_init_dma( &input_stream, "UDA1341 DMA in" ) ){
audio_clear_dma( &output_stream );
audio_clear_dma( &input_stream );
return -EBUSY;
}
L3_init();
audio_ssp_init();
audio_uda1341_reset();
init_waitqueue_head(&audio_waitq);
/* Set some default mixer values... */
STATUS_1.DAC_gain = 1;
STATUS_1.ADC_gain = 1;
L3_write( (UDA1341_L3Addr<<2)|UDA1341_STATUS, (char*)&STATUS_1, 1 );
DATA0_0.volume = 15;
L3_write( (UDA1341_L3Addr<<2)|UDA1341_DATA0, (char*)&DATA0_0, 1 );
DATA0_2.mode = 3;
L3_write( (UDA1341_L3Addr<<2)|UDA1341_DATA0, (char*)&DATA0_2, 1 );
DATA0_ext2.mixer_mode = 2;
DATA0_ext2.mic_level = 4;
L3_write( (UDA1341_L3Addr<<2)|UDA1341_DATA0, (char*)&DATA0_ext2, 2 );
DATA0_ext4.AGC_ctrl = 1;
L3_write( (UDA1341_L3Addr<<2)|UDA1341_DATA0, (char*)&DATA0_ext4, 2 );
DATA0_ext6.AGC_level = 3;
L3_write( (UDA1341_L3Addr<<2)|UDA1341_DATA0, (char*)&DATA0_ext6, 2 );
/* register devices */
audio_dev_dsp = register_sound_dsp(&UDA1341_dsp_fops, -1);
audio_dev_mixer = register_sound_mixer(&UDA1341_mixer_fops, -1);
printk( AUDIO_NAME_VERBOSE " initialized\n" );
return 0;
}