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pbms.c revision 1.11
      1  1.11       phx /* $Id: pbms.c,v 1.11 2010/11/19 18:27:12 phx Exp $ */
      2   1.1  christos 
      3   1.1  christos /*
      4   1.1  christos  * Copyright (c) 2005, Johan Walln
      5   1.1  christos  * All rights reserved.
      6   1.1  christos  *
      7   1.1  christos  * Redistribution and use in source and binary forms, with or without
      8   1.1  christos  * modification, are permitted provided that the following conditions are
      9   1.1  christos  * met:
     10   1.1  christos  *
     11   1.1  christos  *   1. Redistributions of source code must retain the above copyright
     12   1.1  christos  *      notice, this list of conditions and the following disclaimer.
     13   1.1  christos  *
     14   1.1  christos  *   2. Redistributions in binary form must reproduce the above
     15   1.1  christos  *      copyright notice, this list of conditions and the following
     16   1.1  christos  *      disclaimer in the documentation and/or other materials provided
     17   1.1  christos  *      with the distribution.
     18   1.1  christos  *
     19   1.1  christos  *   3. The name of the copyright holder may not be used to endorse or
     20   1.1  christos  *      promote products derived from this software without specific
     21   1.1  christos  *      prior written permission.
     22   1.1  christos  *
     23   1.1  christos  * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDER "AS IS" AND ANY
     24   1.1  christos  * EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
     25   1.1  christos  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
     26   1.1  christos  * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER BE
     27   1.1  christos  * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
     28   1.1  christos  * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
     29   1.1  christos  * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR
     30   1.1  christos  * BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF
     31   1.1  christos  * LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING
     32   1.1  christos  * NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS
     33   1.1  christos  * SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     34   1.1  christos  */
     35   1.1  christos 
     36   1.1  christos /*
     37   1.1  christos  * The pbms driver provides support for the trackpad on new (post
     38   1.1  christos  * February 2005) Apple PowerBooks (and iBooks?) that are not standard
     39   1.1  christos  * USB HID mice.
     40   1.1  christos  */
     41   1.1  christos 
     42   1.1  christos /*
     43   1.1  christos  * The protocol (that is, the interpretation of the data generated by
     44   1.1  christos  * the trackpad) is taken from the Linux appletouch driver version
     45   1.1  christos  * 0.08 by Johannes Berg, Stelian Pop and Frank Arnold.  The method
     46   1.1  christos  * used to detect fingers on the trackpad is also taken from that
     47   1.1  christos  * driver.
     48   1.1  christos  */
     49   1.1  christos 
     50   1.1  christos /*
     51   1.1  christos  * To add support for other devices using the same protocol, add an
     52   1.1  christos  * entry to the pbms_devices table below.  See the comments for
     53   1.1  christos  * pbms_devices and struct pbms_devs.
     54   1.1  christos  */
     55   1.1  christos 
     56   1.1  christos /*
     57   1.1  christos  * PROTOCOL:
     58   1.1  christos  *
     59   1.1  christos  * The driver transfers continuously 81 byte events.  The last byte is
     60   1.1  christos  * 1 if the button is pressed, and is 0 otherwise. Of the remaining
     61   1.1  christos  * bytes, 26 + 16 = 42 are sensors detecting pressure in the X or
     62   1.1  christos  * horizontal, and Y or vertical directions, respectively.  On 12 and
     63   1.1  christos  * 15 inch PowerBooks, only the 16 first sensors in the X-direction
     64   1.1  christos  * are used. In the X-direction, the sensors correspond to byte
     65   1.1  christos  * positions
     66   1.1  christos  *
     67   1.1  christos  *   2, 7, 12, 17, 22, 27, 32, 37, 4, 9, 14, 19, 24, 29, 34, 39, 42,
     68   1.1  christos  *   47, 52, 57, 62, 67, 72, 77, 44 and 49;
     69   1.1  christos  *
     70   1.1  christos  * in the Y direction, the sensors correspond to byte positions
     71   1.1  christos  *
     72   1.1  christos  *   1, 6, 11, 16, 21, 26, 31, 36, 3, 8, 13, 18, 23, 28, 33 and 38.
     73   1.1  christos  *
     74   1.1  christos  * The change in the sensor values over time is more interesting than
     75   1.1  christos  * their absolute values: if the pressure increases, we know that the
     76   1.1  christos  * finger has just moved there.
     77   1.1  christos  *
     78   1.1  christos  * We keep track of the previous sample (of sensor values in the X and
     79   1.1  christos  * Y directions) and the accumulated change for each sensor.  When we
     80   1.1  christos  * receive a new sample, we add the difference of the new sensor value
     81   1.1  christos  * and the old value to the accumulated change.  If the accumulator
     82   1.1  christos  * becomes negative, we set it to zero.  The effect is that the
     83   1.1  christos  * accumulator is large for sensors whose pressure has recently
     84   1.1  christos  * increased.  If there is little change in pressure (or if the
     85   1.1  christos  * pressure decreases), the accumulator drifts back to zero.
     86   1.1  christos  *
     87   1.1  christos  * Since there is some fluctuations, we ignore accumulator values
     88   1.1  christos  * below a threshold.  The raw finger position is computed as a
     89   1.1  christos  * weighted average of the other sensors (the weights are the
     90   1.1  christos  * accumulated changes).
     91   1.1  christos  *
     92   1.1  christos  * For smoothing, we keep track of the previous raw finger position,
     93   1.1  christos  * and the virtual position reported to wsmouse.  The new raw position
     94   1.1  christos  * is computed as a weighted average of the old raw position and the
     95   1.1  christos  * computed raw position.  Since this still generates some noise, we
     96   1.1  christos  * compute a new virtual position as a weighted average of the previous
     97   1.1  christos  * virtual position and the new raw position.  The weights are
     98   1.1  christos  * controlled by the raw change and a noise parameter.  The position
     99   1.1  christos  * is reported as a relative position.
    100   1.1  christos  */
    101   1.1  christos 
    102   1.1  christos /*
    103   1.1  christos  * TODO:
    104   1.1  christos  *
    105   1.1  christos  * Add support for other drivers of the same type.
    106   1.1  christos  *
    107   1.1  christos  * Add support for tapping and two-finger scrolling?  The
    108   1.1  christos  * implementation already detects two fingers, so this should be
    109   1.1  christos  * relatively easy.
    110   1.1  christos  *
    111   1.1  christos  * Implement some of the mouse ioctls?
    112   1.1  christos  *
    113   1.1  christos  * Take care of the XXXs.
    114   1.1  christos  *
    115   1.1  christos  */
    116   1.1  christos 
    117   1.1  christos #include <sys/cdefs.h>
    118   1.1  christos 
    119   1.1  christos #include <sys/param.h>
    120   1.1  christos #include <sys/device.h>
    121   1.1  christos #include <sys/errno.h>
    122   1.1  christos 
    123   1.1  christos #include <sys/ioctl.h>
    124   1.1  christos #include <sys/systm.h>
    125   1.1  christos #include <sys/tty.h>
    126   1.1  christos 
    127   1.1  christos #include <dev/usb/usb.h>
    128   1.1  christos #include <dev/usb/usbdi.h>
    129   1.1  christos #include <dev/usb/usbdevs.h>
    130   1.1  christos #include <dev/usb/uhidev.h>
    131   1.1  christos 
    132   1.1  christos #include <dev/wscons/wsconsio.h>
    133   1.1  christos #include <dev/wscons/wsmousevar.h>
    134   1.1  christos 
    135   1.1  christos /*
    136   1.1  christos  * Magic numbers.
    137   1.1  christos  */
    138   1.1  christos 
    139   1.1  christos 
    140   1.1  christos /* The amount of data transfered by the USB device. */
    141   1.1  christos #define PBMS_DATA_LEN 81
    142   1.1  christos 
    143   1.1  christos /* The maximum number of sensors. */
    144   1.1  christos #define PBMS_X_SENSORS 26
    145   1.1  christos #define PBMS_Y_SENSORS 16
    146   1.1  christos #define PBMS_SENSORS (PBMS_X_SENSORS + PBMS_Y_SENSORS)
    147   1.1  christos 
    148   1.1  christos /*
    149   1.1  christos  * Parameters for supported devices.  For generality, these parameters
    150   1.1  christos  * can be different for each device.  The meanings of the parameters
    151   1.1  christos  * are as follows.
    152   1.1  christos  *
    153   1.1  christos  * desc:      A printable description used for dmesg output.
    154   1.1  christos  *
    155   1.1  christos  * noise:     Amount of noise in the computed position. This controls
    156   1.1  christos  *            how large a change must be to get reported, and how
    157   1.1  christos  *            large enough changes are smoothed.  A good value can
    158   1.1  christos  *            probably only be found experimentally, but something around
    159   1.1  christos  *            16 seems suitable.
    160   1.1  christos  *
    161   1.1  christos  * product:   The product ID of the trackpad.
    162   1.1  christos  *
    163   1.1  christos  *
    164   1.1  christos  * threshold: Accumulated changes less than this are ignored.  A good
    165   1.1  christos  *            value could be determined experimentally, but 5 is a
    166   1.1  christos  *            reasonable guess.
    167   1.1  christos  *
    168   1.1  christos  * vendor:    The vendor ID.  Currently USB_VENDOR_APPLE for all devices.
    169   1.1  christos  *
    170   1.1  christos  * x_factor:  Factor used in computations with X-coordinates.  If the
    171   1.1  christos  *            x-resolution of the display is x, this should be
    172   1.1  christos  *            (x + 1) / (x_sensors - 1).  Other values work fine, but
    173   1.1  christos  *            then the aspect ratio is not necessarily kept.
    174   1.1  christos  *
    175   1.1  christos  * x_sensors: The number of sensors in the X-direction.
    176   1.1  christos  *
    177   1.1  christos  * y_factor:  As x_factors, but for Y-coordinates.
    178   1.1  christos  *
    179   1.1  christos  * y_sensors: The number of sensors in the Y-direction.
    180   1.1  christos  */
    181   1.1  christos 
    182   1.1  christos struct pbms_dev {
    183   1.1  christos 	const char *descr; /* Description of the driver (for dmesg). */
    184   1.1  christos 	int noise;	   /* Amount of noise in the computed position. */
    185   1.1  christos 	int threshold;	   /* Changes less than this are ignored. */
    186   1.1  christos 	int x_factor;	   /* Factor used in computation with X-coordinates. */
    187   1.1  christos 	int x_sensors;	   /* The number of X-sensors. */
    188   1.1  christos 	int y_factor;	   /* Factor used in computation with Y-coordinates. */
    189   1.1  christos 	int y_sensors;	   /* The number of Y-sensors. */
    190   1.1  christos 	uint16_t product;  /* Product ID. */
    191   1.1  christos 	uint16_t vendor;   /* The vendor ID. */
    192   1.1  christos };
    193   1.1  christos 
    194   1.1  christos /* Devices supported by this driver. */
    195   1.1  christos static struct pbms_dev pbms_devices[] =
    196   1.1  christos {
    197   1.1  christos #define POWERBOOK_TOUCHPAD(inches, prod, x_fact, x_sens, y_fact)	      \
    198   1.1  christos        {								      \
    199   1.1  christos 		.descr = #inches " inch PowerBook Trackpad",		      \
    200   1.1  christos 		.vendor = USB_VENDOR_APPLE,				      \
    201   1.1  christos 		.product = (prod),					      \
    202   1.1  christos 		.noise = 16,						      \
    203   1.1  christos 		.threshold = 5,						      \
    204   1.1  christos 		.x_factor = (x_fact),					      \
    205   1.1  christos 		.x_sensors = (x_sens),					      \
    206   1.1  christos 		.y_factor = (y_fact),					      \
    207   1.1  christos 		.y_sensors = 16						      \
    208   1.1  christos        }
    209   1.1  christos        /* 12 inch PowerBooks */
    210   1.1  christos        POWERBOOK_TOUCHPAD(12, 0x030a, 69, 16, 52), /* XXX Not tested. */
    211   1.1  christos        /* 15 inch PowerBooks */
    212   1.1  christos        POWERBOOK_TOUCHPAD(15, 0x020e, 85, 16, 57), /* XXX Not tested. */
    213   1.1  christos        POWERBOOK_TOUCHPAD(15, 0x020f, 85, 16, 57),
    214   1.8   aymeric        POWERBOOK_TOUCHPAD(15, 0x0215, 90, 15, 107),
    215   1.1  christos        /* 17 inch PowerBooks */
    216   1.1  christos        POWERBOOK_TOUCHPAD(17, 0x020d, 71, 26, 68)  /* XXX Not tested. */
    217   1.1  christos #undef POWERBOOK_TOUCHPAD
    218   1.1  christos };
    219   1.1  christos 
    220   1.1  christos /* The number of supported devices. */
    221   1.1  christos #define PBMS_NUM_DEVICES (sizeof(pbms_devices) / sizeof(pbms_devices[0]))
    222   1.1  christos 
    223   1.1  christos 
    224   1.1  christos /*
    225   1.1  christos  * Types and prototypes.
    226   1.1  christos  */
    227   1.1  christos 
    228   1.1  christos 
    229   1.1  christos /* Device data. */
    230   1.1  christos struct pbms_softc {
    231   1.1  christos 	struct uhidev sc_hdev;	      /* USB parent (got the struct device). */
    232   1.6   aymeric 	int is_geyser2;
    233   1.6   aymeric 	int sc_datalen;
    234   1.1  christos 	int sc_acc[PBMS_SENSORS];     /* Accumulated sensor values. */
    235   1.6   aymeric 	unsigned char sc_prev[PBMS_SENSORS];   /* Previous sample. */
    236   1.6   aymeric 	unsigned char sc_sample[PBMS_SENSORS]; /* Current sample. */
    237   1.9    dyoung 	device_t sc_wsmousedev; /* WSMouse device. */
    238   1.1  christos 	int sc_noise;		      /* Amount of noise. */
    239   1.1  christos 	int sc_theshold;	      /* Threshold value. */
    240   1.1  christos 	int sc_x;		      /* Virtual position in horizontal
    241   1.1  christos 				       * direction (wsmouse position). */
    242   1.1  christos 	int sc_x_factor;	      /* X-coordinate factor. */
    243   1.1  christos 	int sc_x_raw;		      /* X-position of finger on trackpad. */
    244   1.1  christos 	int sc_x_sensors;	      /* Number of X-sensors. */
    245   1.1  christos 	int sc_y;		      /* Virtual position in vertical direction
    246   1.1  christos 				       * (wsmouse position). */
    247   1.1  christos 	int sc_y_factor;	      /* Y-coordinate factor. */
    248   1.1  christos 	int sc_y_raw;		      /* Y-position of finger on trackpad. */
    249   1.1  christos 	int sc_y_sensors;	      /* Number of Y-sensors. */
    250   1.1  christos 	uint32_t sc_buttons;	      /* Button state. */
    251   1.1  christos 	uint32_t sc_status;	      /* Status flags. */
    252   1.1  christos #define PBMS_ENABLED 1		      /* Is the device enabled? */
    253   1.1  christos #define PBMS_DYING 2		      /* Is the device dying? */
    254   1.1  christos #define PBMS_VALID 4		      /* Is the previous sample valid? */
    255   1.1  christos };
    256   1.1  christos 
    257   1.1  christos 
    258   1.1  christos /* Static function prototypes. */
    259   1.1  christos static void pbms_intr(struct uhidev *, void *, unsigned int);
    260   1.1  christos static int pbms_enable(void *);
    261   1.1  christos static void pbms_disable(void *);
    262   1.5  christos static int pbms_ioctl(void *, unsigned long, void *, int, struct lwp *);
    263   1.6   aymeric static void reorder_sample(struct pbms_softc *, unsigned char *, unsigned char *);
    264   1.1  christos static int compute_delta(struct pbms_softc *, int *, int *, int *, uint32_t *);
    265   1.1  christos static int detect_pos(int *, int, int, int, int *, int *);
    266   1.1  christos static int smooth_pos(int, int, int);
    267   1.1  christos 
    268   1.1  christos /* Access methods for wsmouse. */
    269   1.1  christos const struct wsmouse_accessops pbms_accessops = {
    270   1.1  christos 	pbms_enable,
    271   1.1  christos 	pbms_ioctl,
    272   1.1  christos 	pbms_disable,
    273   1.1  christos };
    274   1.1  christos 
    275   1.1  christos /* This take cares also of the basic device registration. */
    276   1.9    dyoung int pbms_match(device_t, cfdata_t, void *);
    277   1.9    dyoung void pbms_attach(device_t, device_t, void *);
    278   1.9    dyoung int pbms_detach(device_t, int);
    279   1.9    dyoung void pbms_childdet(device_t, device_t);
    280   1.9    dyoung int pbms_activate(device_t, enum devact);
    281   1.9    dyoung extern struct cfdriver pbms_cd;
    282   1.9    dyoung CFATTACH_DECL2_NEW(pbms, sizeof(struct pbms_softc), pbms_match, pbms_attach,
    283   1.9    dyoung     pbms_detach, pbms_activate, NULL, pbms_childdet);
    284   1.1  christos 
    285   1.1  christos /*
    286   1.1  christos  * Basic driver.
    287   1.1  christos  */
    288   1.1  christos 
    289   1.1  christos 
    290   1.1  christos /* Try to match the device at some uhidev. */
    291   1.1  christos 
    292   1.1  christos int
    293   1.9    dyoung pbms_match(device_t parent, cfdata_t match, void *aux)
    294   1.1  christos {
    295   1.1  christos 	struct uhidev_attach_arg *uha = aux;
    296   1.1  christos 	usb_device_descriptor_t *udd;
    297   1.1  christos 	int i;
    298   1.1  christos 	uint16_t vendor, product;
    299   1.1  christos 
    300   1.1  christos 	/*
    301   1.1  christos 	 * We just check if the vendor and product IDs have the magic numbers
    302   1.1  christos 	 * we expect.
    303   1.1  christos 	 */
    304  1.11       phx 	if (uha->uaa->proto == UIPROTO_MOUSE &&
    305  1.11       phx 	    (udd = usbd_get_device_descriptor(uha->parent->sc_udev)) != NULL) {
    306   1.1  christos 		vendor = UGETW(udd->idVendor);
    307   1.1  christos 		product = UGETW(udd->idProduct);
    308   1.1  christos 		for (i = 0; i < PBMS_NUM_DEVICES; i++) {
    309   1.1  christos 			if (vendor == pbms_devices[i].vendor &&
    310   1.1  christos 			    product == pbms_devices[i].product)
    311   1.1  christos 				return UMATCH_IFACECLASS;
    312   1.1  christos 		}
    313   1.1  christos 	}
    314   1.1  christos 	return UMATCH_NONE;
    315   1.1  christos }
    316   1.1  christos 
    317   1.1  christos 
    318   1.1  christos /* Attach the device. */
    319   1.1  christos 
    320   1.1  christos void
    321   1.9    dyoung pbms_attach(device_t parent, device_t self, void *aux)
    322   1.1  christos {
    323   1.1  christos 	struct wsmousedev_attach_args a;
    324   1.1  christos 	struct uhidev_attach_arg *uha = aux;
    325   1.1  christos 	struct pbms_dev *pd;
    326   1.8   aymeric 	struct pbms_softc *sc = device_private(self);
    327   1.1  christos 	usb_device_descriptor_t *udd;
    328   1.1  christos 	int i;
    329   1.1  christos 	uint16_t vendor, product;
    330   1.1  christos 
    331   1.1  christos 	sc->sc_hdev.sc_intr = pbms_intr;
    332   1.1  christos 	sc->sc_hdev.sc_parent = uha->parent;
    333   1.1  christos 	sc->sc_hdev.sc_report_id = uha->reportid;
    334   1.1  christos 
    335   1.6   aymeric 	sc->is_geyser2 = 0;
    336   1.6   aymeric 	sc->sc_datalen = PBMS_DATA_LEN;
    337   1.6   aymeric 
    338   1.1  christos 	/* Fill in device-specific parameters. */
    339   1.1  christos 	if ((udd = usbd_get_device_descriptor(uha->parent->sc_udev)) != NULL) {
    340   1.1  christos 		product = UGETW(udd->idProduct);
    341   1.1  christos 		vendor = UGETW(udd->idVendor);
    342   1.1  christos 		for (i = 0; i < PBMS_NUM_DEVICES; i++) {
    343   1.1  christos 			pd = &pbms_devices[i];
    344   1.1  christos 			if (product == pd->product && vendor == pd->vendor) {
    345   1.1  christos 				printf(": %s\n", pd->descr);
    346   1.1  christos 				sc->sc_noise = pd->noise;
    347   1.1  christos 				sc->sc_theshold = pd->threshold;
    348   1.1  christos 				sc->sc_x_factor = pd->x_factor;
    349   1.1  christos 				sc->sc_x_sensors = pd->x_sensors;
    350   1.1  christos 				sc->sc_y_factor = pd->y_factor;
    351   1.1  christos 				sc->sc_y_sensors = pd->y_sensors;
    352   1.8   aymeric 				if (product == 0x0215) {
    353   1.6   aymeric 					sc->is_geyser2 = 1;
    354   1.8   aymeric 					sc->sc_datalen = 64;
    355   1.6   aymeric 					sc->sc_y_sensors = 9;
    356   1.6   aymeric 				}
    357   1.1  christos 				break;
    358   1.1  christos 			}
    359   1.1  christos 		}
    360   1.1  christos 	}
    361   1.1  christos 	KASSERT(0 <= sc->sc_x_sensors && sc->sc_x_sensors <= PBMS_X_SENSORS);
    362   1.1  christos 	KASSERT(0 <= sc->sc_y_sensors && sc->sc_y_sensors <= PBMS_Y_SENSORS);
    363   1.1  christos 
    364   1.1  christos 	sc->sc_status = 0;
    365   1.1  christos 
    366   1.1  christos 	a.accessops = &pbms_accessops;
    367   1.1  christos 	a.accesscookie = sc;
    368   1.1  christos 
    369   1.1  christos 	sc->sc_wsmousedev = config_found(self, &a, wsmousedevprint);
    370   1.1  christos 
    371  1.10     pooka 	return;
    372   1.1  christos }
    373   1.1  christos 
    374   1.1  christos 
    375   1.1  christos /* Detach the device. */
    376   1.1  christos 
    377   1.9    dyoung void
    378   1.9    dyoung pbms_childdet(device_t self, device_t child)
    379   1.1  christos {
    380   1.9    dyoung 	struct pbms_softc *sc = device_private(self);
    381   1.1  christos 
    382   1.9    dyoung 	if (sc->sc_wsmousedev == child)
    383   1.9    dyoung 		sc->sc_wsmousedev = NULL;
    384   1.9    dyoung }
    385   1.1  christos 
    386   1.9    dyoung int
    387   1.9    dyoung pbms_detach(device_t self, int flags)
    388   1.9    dyoung {
    389   1.9    dyoung 	/* XXX This could not possibly be sufficient! */
    390   1.9    dyoung 	return config_detach_children(self, flags);
    391   1.1  christos }
    392   1.1  christos 
    393   1.1  christos 
    394   1.1  christos /* Activate the device. */
    395   1.1  christos 
    396   1.1  christos int
    397   1.9    dyoung pbms_activate(device_t self, enum devact act)
    398   1.1  christos {
    399   1.9    dyoung 	struct pbms_softc *sc = device_private(self);
    400   1.9    dyoung 
    401   1.9    dyoung 	if (act != DVACT_DEACTIVATE)
    402   1.9    dyoung 		return EOPNOTSUPP;
    403   1.1  christos 
    404   1.9    dyoung 	sc->sc_status |= PBMS_DYING;
    405   1.9    dyoung 	return 0;
    406   1.1  christos }
    407   1.1  christos 
    408   1.1  christos 
    409   1.1  christos /* Enable the device. */
    410   1.1  christos 
    411   1.1  christos static int
    412   1.1  christos pbms_enable(void *v)
    413   1.1  christos {
    414   1.1  christos 	struct pbms_softc *sc = v;
    415   1.1  christos 
    416   1.1  christos 	/* Check that we are not detaching or already enabled. */
    417   1.1  christos 	if (sc->sc_status & PBMS_DYING)
    418   1.1  christos 		return EIO;
    419   1.1  christos 	if (sc->sc_status & PBMS_ENABLED)
    420   1.1  christos 		return EBUSY;
    421   1.1  christos 
    422   1.1  christos 	sc->sc_status |= PBMS_ENABLED;
    423   1.1  christos 	sc->sc_status &= ~PBMS_VALID;
    424   1.1  christos 	sc->sc_buttons = 0;
    425   1.1  christos 	memset(sc->sc_sample, 0, sizeof(sc->sc_sample));
    426   1.1  christos 
    427   1.1  christos 	return uhidev_open(&sc->sc_hdev);
    428   1.1  christos }
    429   1.1  christos 
    430   1.1  christos 
    431   1.1  christos /* Disable the device. */
    432   1.1  christos 
    433   1.1  christos static void
    434   1.1  christos pbms_disable(void *v)
    435   1.1  christos {
    436   1.1  christos 	struct pbms_softc *sc = v;
    437   1.1  christos 
    438   1.1  christos 	if (!(sc->sc_status & PBMS_ENABLED))
    439   1.1  christos 		return;
    440   1.1  christos 
    441   1.1  christos 	sc->sc_status &= ~PBMS_ENABLED;
    442   1.1  christos 	uhidev_close(&sc->sc_hdev);
    443   1.1  christos }
    444   1.1  christos 
    445   1.1  christos 
    446   1.1  christos /* XXX ioctl not implemented. */
    447   1.1  christos 
    448   1.1  christos static int
    449   1.5  christos pbms_ioctl(void *v, unsigned long cmd, void *data, int flag, struct lwp *p)
    450   1.1  christos {
    451   1.1  christos 	return EPASSTHROUGH;
    452   1.1  christos }
    453   1.1  christos 
    454   1.1  christos 
    455   1.1  christos /*
    456   1.1  christos  * Interrupts & pointer movement.
    457   1.1  christos  */
    458   1.1  christos 
    459   1.1  christos 
    460   1.1  christos /* Handle interrupts. */
    461   1.1  christos 
    462   1.1  christos void
    463   1.1  christos pbms_intr(struct uhidev *addr, void *ibuf, unsigned int len)
    464   1.1  christos {
    465   1.1  christos 	struct pbms_softc *sc = (struct pbms_softc *)addr;
    466   1.6   aymeric 	unsigned char *data;
    467   1.1  christos 	int dx, dy, dz, i, s;
    468   1.1  christos 	uint32_t buttons;
    469   1.1  christos 
    470   1.1  christos 	/* Ignore incomplete data packets. */
    471   1.6   aymeric 	if (len != sc->sc_datalen)
    472   1.1  christos 		return;
    473   1.1  christos 	data = ibuf;
    474   1.1  christos 
    475   1.6   aymeric #if 0
    476   1.6   aymeric 	printf("(");
    477   1.6   aymeric 	for (i = 0; i < len; i++)
    478   1.6   aymeric 		printf(" %d", data[i]);
    479   1.6   aymeric 	printf(" )\n");
    480   1.6   aymeric #endif
    481   1.6   aymeric 
    482   1.1  christos 	/* The last byte is 1 if the button is pressed and 0 otherwise. */
    483   1.6   aymeric 	buttons = !!data[sc->sc_datalen - 1];
    484   1.1  christos 
    485   1.1  christos 	/* Everything below assumes that the sample is reordered. */
    486   1.6   aymeric 	reorder_sample(sc, sc->sc_sample, data);
    487   1.1  christos 
    488   1.1  christos 	/* Is this the first sample? */
    489   1.1  christos 	if (!(sc->sc_status & PBMS_VALID)) {
    490   1.1  christos 		sc->sc_status |= PBMS_VALID;
    491   1.1  christos 		sc->sc_x = sc->sc_y = -1;
    492   1.1  christos 		sc->sc_x_raw = sc->sc_y_raw = -1;
    493   1.1  christos 		memcpy(sc->sc_prev, sc->sc_sample, sizeof(sc->sc_prev));
    494   1.1  christos 		memset(sc->sc_acc, 0, sizeof(sc->sc_acc));
    495   1.1  christos 		return;
    496   1.1  christos 	}
    497   1.1  christos 	/* Accumulate the sensor change while keeping it nonnegative. */
    498   1.1  christos 	for (i = 0; i < PBMS_SENSORS; i++) {
    499   1.6   aymeric 		sc->sc_acc[i] +=
    500   1.6   aymeric 			(signed char) (sc->sc_sample[i] - sc->sc_prev[i]);
    501   1.1  christos 		if (sc->sc_acc[i] < 0)
    502   1.1  christos 			sc->sc_acc[i] = 0;
    503   1.1  christos 	}
    504   1.1  christos 	memcpy(sc->sc_prev, sc->sc_sample, sizeof(sc->sc_prev));
    505   1.1  christos 
    506   1.1  christos 	/* Compute change. */
    507   1.1  christos 	dx = dy = dz = 0;
    508   1.1  christos 	if (!compute_delta(sc, &dx, &dy, &dz, &buttons))
    509   1.1  christos 		return;
    510   1.1  christos 
    511   1.1  christos 	/* Report to wsmouse. */
    512   1.1  christos 	if ((dx != 0 || dy != 0 || dz != 0 || buttons != sc->sc_buttons) &&
    513   1.1  christos 	    sc->sc_wsmousedev != NULL) {
    514   1.1  christos 		s = spltty();
    515   1.4    plunky 		wsmouse_input(sc->sc_wsmousedev, buttons, dx, -dy, dz, 0,
    516   1.1  christos 		    WSMOUSE_INPUT_DELTA);
    517   1.1  christos 		splx(s);
    518   1.1  christos 	}
    519   1.1  christos 	sc->sc_buttons = buttons;
    520   1.1  christos }
    521   1.1  christos 
    522   1.1  christos 
    523   1.1  christos /*
    524   1.1  christos  * Reorder the sensor values so that all the X-sensors are before the
    525   1.1  christos  * Y-sensors in the natural order. Note that this might have to be
    526   1.1  christos  * rewritten if PBMS_X_SENSORS or PBMS_Y_SENSORS change.
    527   1.1  christos  */
    528   1.1  christos 
    529   1.1  christos static void
    530   1.6   aymeric reorder_sample(struct pbms_softc *sc, unsigned char *to, unsigned char *from)
    531   1.1  christos {
    532   1.1  christos 	int i;
    533   1.1  christos 
    534   1.6   aymeric 	if (sc->is_geyser2) {
    535   1.6   aymeric 		int j;
    536   1.6   aymeric 
    537   1.6   aymeric 		memset(to, 0, PBMS_SENSORS);
    538   1.6   aymeric 		for (i = 0, j = 19; i < 20; i += 2, j += 3) {
    539   1.6   aymeric 			to[i] = from[j];
    540   1.6   aymeric 			to[i + 1] = from[j + 1];
    541   1.6   aymeric 		}
    542   1.6   aymeric 		for (i = 0, j = 1; i < 9; i += 2, j += 3) {
    543   1.6   aymeric 			to[PBMS_X_SENSORS + i] = from[j];
    544   1.6   aymeric 			to[PBMS_X_SENSORS + i + 1] = from[j + 1];
    545   1.6   aymeric 		}
    546   1.6   aymeric 	} else {
    547   1.6   aymeric 		for (i = 0; i < 8; i++) {
    548   1.6   aymeric 			/* X-sensors. */
    549   1.6   aymeric 			to[i] = from[5 * i + 2];
    550   1.6   aymeric 			to[i + 8] = from[5 * i + 4];
    551   1.6   aymeric 			to[i + 16] = from[5 * i + 42];
    552   1.6   aymeric 	#if 0
    553   1.6   aymeric 			/*
    554   1.6   aymeric 			 * XXX This seems to introduce random ventical jumps, so
    555   1.6   aymeric 			 * we ignore these sensors until we figure out their meaning.
    556   1.6   aymeric 			 */
    557   1.6   aymeric 			if (i < 2)
    558   1.6   aymeric 				to[i + 24] = from[5 * i + 44];
    559   1.6   aymeric 	#endif /* 0 */
    560   1.6   aymeric 			/* Y-sensors. */
    561   1.6   aymeric 			to[i + 26] = from[5 * i + 1];
    562   1.6   aymeric 			to[i + 34] = from[5 * i + 3];
    563   1.6   aymeric 		}
    564   1.1  christos 	}
    565   1.1  christos }
    566   1.1  christos 
    567   1.1  christos 
    568   1.1  christos /*
    569   1.1  christos  * Compute the change in x, y and z direction, update the button state
    570   1.1  christos  * (to simulate more than one button, scrolling etc.), and update the
    571   1.1  christos  * history. Note that dx, dy, dz and buttons are modified only if
    572   1.1  christos  * corresponding pressure is detected and should thus be initialised
    573   1.1  christos  * before the call.  Return 0 on error.
    574   1.1  christos  */
    575   1.1  christos 
    576   1.1  christos /* XXX Could we report something useful in dz? */
    577   1.1  christos 
    578   1.1  christos static int
    579   1.1  christos compute_delta(struct pbms_softc *sc, int *dx, int *dy, int *dz,
    580   1.1  christos 	      uint32_t * buttons)
    581   1.1  christos {
    582   1.1  christos 	int x_det, y_det, x_raw, y_raw, x_fingers, y_fingers, fingers, x, y;
    583   1.1  christos 
    584   1.1  christos 	x_det = detect_pos(sc->sc_acc, sc->sc_x_sensors, sc->sc_theshold,
    585   1.1  christos 			   sc->sc_x_factor, &x_raw, &x_fingers);
    586   1.1  christos 	y_det = detect_pos(sc->sc_acc + PBMS_X_SENSORS, sc->sc_y_sensors,
    587   1.1  christos 			   sc->sc_theshold, sc->sc_y_factor,
    588   1.1  christos 			   &y_raw, &y_fingers);
    589   1.1  christos 	fingers = max(x_fingers, y_fingers);
    590   1.1  christos 
    591   1.1  christos 	/* Check the number of fingers and if we have detected a position. */
    592   1.1  christos 	if (fingers > 1) {
    593   1.1  christos 		/* More than one finger detected, resetting. */
    594   1.1  christos 		memset(sc->sc_acc, 0, sizeof(sc->sc_acc));
    595   1.1  christos 		sc->sc_x_raw = sc->sc_y_raw = sc->sc_x = sc->sc_y = -1;
    596   1.1  christos 		return 0;
    597   1.1  christos 	} else if (x_det == 0 && y_det == 0) {
    598   1.1  christos 		/* No position detected, resetting. */
    599   1.1  christos 		memset(sc->sc_acc, 0, sizeof(sc->sc_acc));
    600   1.1  christos 		sc->sc_x_raw = sc->sc_y_raw = sc->sc_x = sc->sc_y = -1;
    601   1.1  christos 	} else if (x_det > 0 && y_det > 0) {
    602   1.1  christos 		/* Smooth position. */
    603   1.1  christos 		if (sc->sc_x_raw >= 0) {
    604   1.1  christos 			sc->sc_x_raw = (3 * sc->sc_x_raw + x_raw) / 4;
    605   1.1  christos 			sc->sc_y_raw = (3 * sc->sc_y_raw + y_raw) / 4;
    606   1.1  christos 			/*
    607   1.1  christos 			 * Compute virtual position and change if we already
    608   1.1  christos 			 * have a decent position.
    609   1.1  christos 			 */
    610   1.1  christos 			if (sc->sc_x >= 0) {
    611   1.1  christos 				x = smooth_pos(sc->sc_x, sc->sc_x_raw,
    612   1.1  christos 					       sc->sc_noise);
    613   1.1  christos 				y = smooth_pos(sc->sc_y, sc->sc_y_raw,
    614   1.1  christos 					       sc->sc_noise);
    615   1.1  christos 				*dx = x - sc->sc_x;
    616   1.1  christos 				*dy = y - sc->sc_y;
    617   1.1  christos 				sc->sc_x = x;
    618   1.1  christos 				sc->sc_y = y;
    619   1.1  christos 			} else {
    620   1.1  christos 				/* Initialise virtual position. */
    621   1.1  christos 				sc->sc_x = sc->sc_x_raw;
    622   1.1  christos 				sc->sc_y = sc->sc_y_raw;
    623   1.1  christos 			}
    624   1.1  christos 		} else {
    625   1.1  christos 			/* Initialise raw position. */
    626   1.1  christos 			sc->sc_x_raw = x_raw;
    627   1.1  christos 			sc->sc_y_raw = y_raw;
    628   1.1  christos 		}
    629   1.1  christos 	}
    630   1.1  christos 	return 1;
    631   1.1  christos }
    632   1.1  christos 
    633   1.1  christos 
    634   1.1  christos /*
    635   1.1  christos  * Compute the new smoothed position from the previous smoothed position
    636   1.1  christos  * and the raw position.
    637   1.1  christos  */
    638   1.1  christos 
    639   1.1  christos static int
    640   1.1  christos smooth_pos(int pos_old, int pos_raw, int noise)
    641   1.1  christos {
    642   1.1  christos 	int ad, delta;
    643   1.1  christos 
    644   1.1  christos 	delta = pos_raw - pos_old;
    645   1.1  christos 	ad = abs(delta);
    646   1.1  christos 
    647   1.1  christos 	/* Too small changes are ignored. */
    648   1.1  christos 	if (ad < noise / 2)
    649   1.1  christos 		delta = 0;
    650   1.1  christos 	/* A bit larger changes are smoothed. */
    651   1.1  christos 	else if (ad < noise)
    652   1.1  christos 		delta /= 4;
    653   1.1  christos 	else if (ad < 2 * noise)
    654   1.1  christos 		delta /= 2;
    655   1.1  christos 
    656   1.1  christos 	return pos_old + delta;
    657   1.1  christos }
    658   1.1  christos 
    659   1.1  christos 
    660   1.1  christos /*
    661   1.1  christos  * Detect the position of the finger.  Returns the total pressure.
    662   1.1  christos  * The position is returned in pos_ret and the number of fingers
    663   1.1  christos  * is returned in fingers_ret.  The position returned in pos_ret
    664   1.1  christos  * is in [0, (n_sensors - 1) * factor - 1].
    665   1.1  christos  */
    666   1.1  christos 
    667   1.1  christos static int
    668   1.1  christos detect_pos(int *sensors, int n_sensors, int threshold, int fact,
    669   1.1  christos 	   int *pos_ret, int *fingers_ret)
    670   1.1  christos {
    671   1.1  christos 	int i, w, s;
    672   1.1  christos 
    673   1.1  christos 	/*
    674   1.1  christos 	 * Compute the number of fingers, total pressure, and weighted
    675   1.1  christos 	 * position of the fingers.
    676   1.1  christos 	 */
    677   1.1  christos 	*fingers_ret = 0;
    678   1.1  christos 	w = s = 0;
    679   1.1  christos 	for (i = 0; i < n_sensors; i++) {
    680   1.1  christos 		if (sensors[i] >= threshold) {
    681   1.1  christos 			if (i == 0 || sensors[i - 1] < threshold)
    682   1.1  christos 				*fingers_ret += 1;
    683   1.1  christos 			s += sensors[i];
    684   1.1  christos 			w += sensors[i] * i;
    685   1.1  christos 		}
    686   1.1  christos 	}
    687   1.1  christos 
    688   1.1  christos 	if (s > 0)
    689   1.1  christos 		*pos_ret = w * fact / s;
    690   1.1  christos 
    691   1.1  christos 	return s;
    692   1.1  christos }
    693