freebsd-dev/sys/dev/mmc/bridge.h

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/*-
* SPDX-License-Identifier: BSD-2-Clause-FreeBSD
*
* Copyright (c) 2006 M. Warner Losh. All rights reserved.
*
* Redistribution and use in source and binary forms, with or without
* modification, are permitted provided that the following conditions
* are met:
* 1. Redistributions of source code must retain the above copyright
* notice, this list of conditions and the following disclaimer.
* 2. Redistributions in binary form must reproduce the above copyright
* notice, this list of conditions and the following disclaimer in the
* documentation and/or other materials provided with the distribution.
*
* THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
* IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
* OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
* IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
* INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
* NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
* DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
* THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
* (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
* THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
*
* Portions of this software may have been developed with reference to
* the SD Simplified Specification. The following disclaimer may apply:
*
* The following conditions apply to the release of the simplified
* specification ("Simplified Specification") by the SD Card Association and
* the SD Group. The Simplified Specification is a subset of the complete SD
* Specification which is owned by the SD Card Association and the SD
* Group. This Simplified Specification is provided on a non-confidential
* basis subject to the disclaimers below. Any implementation of the
* Simplified Specification may require a license from the SD Card
* Association, SD Group, SD-3C LLC or other third parties.
*
* Disclaimers:
*
* The information contained in the Simplified Specification is presented only
* as a standard specification for SD Cards and SD Host/Ancillary products and
* is provided "AS-IS" without any representations or warranties of any
* kind. No responsibility is assumed by the SD Group, SD-3C LLC or the SD
* Card Association for any damages, any infringements of patents or other
* right of the SD Group, SD-3C LLC, the SD Card Association or any third
* parties, which may result from its use. No license is granted by
* implication, estoppel or otherwise under any patent or other rights of the
* SD Group, SD-3C LLC, the SD Card Association or any third party. Nothing
* herein shall be construed as an obligation by the SD Group, the SD-3C LLC
* or the SD Card Association to disclose or distribute any technical
* information, know-how or other confidential information to any third party.
*
* $FreeBSD$
*/
#ifndef DEV_MMC_BRIDGE_H
#define DEV_MMC_BRIDGE_H
#include <sys/bus.h>
/*
* This file defines interfaces for the mmc bridge. The names chosen
* are similar to or the same as the names used in Linux to allow for
* easy porting of what Linux calls mmc host drivers. I use the
* FreeBSD terminology of bridge and bus for consistency with other
* drivers in the system. This file corresponds roughly to the Linux
* linux/mmc/host.h file.
*
* A mmc bridge is a chipset that can have one or more mmc and/or sd
* cards attached to it. mmc devices are attached on a bus topology,
* while sd and sdio cards usually are attached using a star topology
* (meaning in practice each sd card has its own, independent slot).
* Since SDHCI v3.00, buses for esd and esdio are possible, though.
*
* Attached to the mmc bridge is an mmcbus. The mmcbus is described
* in dev/mmc/mmcbus_if.m.
*/
/*
* mmc_ios is a structure that is used to store the state of the mmc/sd
* bus configuration. This include the bus' clock speed, its voltage,
* the bus mode for command output, the SPI chip select, some power
* states and the bus width.
*/
enum mmc_vdd {
vdd_150 = 0, vdd_155, vdd_160, vdd_165, vdd_170, vdd_180,
vdd_190, vdd_200, vdd_210, vdd_220, vdd_230, vdd_240, vdd_250,
vdd_260, vdd_270, vdd_280, vdd_290, vdd_300, vdd_310, vdd_320,
vdd_330, vdd_340, vdd_350, vdd_360
};
o Add support for eMMC DDR bus speed mode at 52 MHz to sdhci(4) and mmc(4). For the most part, this consists of support for: - Switching the signal voltage (VCCQ) to 1.8 V or (if supported by the host controller) to 1.2 V, - setting the UHS mode as appropriate in the SDHCI_HOST_CONTROL2 register, - setting the power class in the eMMC device according to the core supply voltage (VCC), - using different bits for enabling a bus width of 4 and 8 bits in the the eMMC device at DDR or higher timings respectively, - arbitrating timings faster than high speed if there actually are additional devices on the same MMC bus. Given that support for DDR52 is not denoted by SDHCI capability registers, availability of that timing is indicated by a new quirk SDHCI_QUIRK_MMC_DDR52 and only enabled for Intel SDHCI controllers so far. Generally, what it takes for a sdhci(4) front-end to enable support for DDR52 is to hook up the bridge method mmcbr_switch_vccq (which especially for 1.2 V signaling support is chip/board specific) and the sdhci_set_uhs_timing sdhci(4) method. As a side-effect, this change also fixes communication with some eMMC devices at SDR high speed mode with 52 MHz due to the signaling voltage and UHS bits in the SDHCI controller no longer being left in an inappropriate state. Compared to 52 MHz at SDR high speed which typically yields ~45 MB/s with the eMMC chips tested, throughput goes up to ~80 MB/s at DDR52. Additionally, this change already adds infrastructure and quite some code for modes up to HS400ES and SDR104 respectively (I did not want to add to much stuff at a time, though). Essentially, what is still missing in order to be able to activate support for these latter is is support for and handling of (re-)tuning. o In sdhci(4), add two tunables hw.sdhci.quirk_clear as well as hw.sdhci.quirk_set, which (when hooked up in the front-end) allow to set/clear sdhci(4) quirks for debugging and testing purposes. However, especially for SDHCI controllers on the PCI bus which have no specific support code so far and, thus, are picked up as generic SDHCI controllers, hw.sdhci.quirk_set allows for setting the necessary quirks (if required). o In mmc(4), check and handle the return values of some more function calls instead of assuming that everything went right. In case failures actually are not problematic, indicate that by casting the return value to void. Reviewed by: jmcneill
2017-03-19 23:27:17 +00:00
enum mmc_vccq {
vccq_120 = 0, vccq_180, vccq_330
};
enum mmc_power_mode {
power_off = 0, power_up, power_on
};
enum mmc_bus_mode {
opendrain = 1, pushpull
};
enum mmc_chip_select {
cs_dontcare = 0, cs_high, cs_low
};
enum mmc_bus_width {
bus_width_1 = 0, bus_width_4 = 2, bus_width_8 = 3
};
o Add support for eMMC DDR bus speed mode at 52 MHz to sdhci(4) and mmc(4). For the most part, this consists of support for: - Switching the signal voltage (VCCQ) to 1.8 V or (if supported by the host controller) to 1.2 V, - setting the UHS mode as appropriate in the SDHCI_HOST_CONTROL2 register, - setting the power class in the eMMC device according to the core supply voltage (VCC), - using different bits for enabling a bus width of 4 and 8 bits in the the eMMC device at DDR or higher timings respectively, - arbitrating timings faster than high speed if there actually are additional devices on the same MMC bus. Given that support for DDR52 is not denoted by SDHCI capability registers, availability of that timing is indicated by a new quirk SDHCI_QUIRK_MMC_DDR52 and only enabled for Intel SDHCI controllers so far. Generally, what it takes for a sdhci(4) front-end to enable support for DDR52 is to hook up the bridge method mmcbr_switch_vccq (which especially for 1.2 V signaling support is chip/board specific) and the sdhci_set_uhs_timing sdhci(4) method. As a side-effect, this change also fixes communication with some eMMC devices at SDR high speed mode with 52 MHz due to the signaling voltage and UHS bits in the SDHCI controller no longer being left in an inappropriate state. Compared to 52 MHz at SDR high speed which typically yields ~45 MB/s with the eMMC chips tested, throughput goes up to ~80 MB/s at DDR52. Additionally, this change already adds infrastructure and quite some code for modes up to HS400ES and SDR104 respectively (I did not want to add to much stuff at a time, though). Essentially, what is still missing in order to be able to activate support for these latter is is support for and handling of (re-)tuning. o In sdhci(4), add two tunables hw.sdhci.quirk_clear as well as hw.sdhci.quirk_set, which (when hooked up in the front-end) allow to set/clear sdhci(4) quirks for debugging and testing purposes. However, especially for SDHCI controllers on the PCI bus which have no specific support code so far and, thus, are picked up as generic SDHCI controllers, hw.sdhci.quirk_set allows for setting the necessary quirks (if required). o In mmc(4), check and handle the return values of some more function calls instead of assuming that everything went right. In case failures actually are not problematic, indicate that by casting the return value to void. Reviewed by: jmcneill
2017-03-19 23:27:17 +00:00
enum mmc_drv_type {
drv_type_b = 0, drv_type_a, drv_type_c, drv_type_d
};
enum mmc_bus_timing {
o Add support for eMMC DDR bus speed mode at 52 MHz to sdhci(4) and mmc(4). For the most part, this consists of support for: - Switching the signal voltage (VCCQ) to 1.8 V or (if supported by the host controller) to 1.2 V, - setting the UHS mode as appropriate in the SDHCI_HOST_CONTROL2 register, - setting the power class in the eMMC device according to the core supply voltage (VCC), - using different bits for enabling a bus width of 4 and 8 bits in the the eMMC device at DDR or higher timings respectively, - arbitrating timings faster than high speed if there actually are additional devices on the same MMC bus. Given that support for DDR52 is not denoted by SDHCI capability registers, availability of that timing is indicated by a new quirk SDHCI_QUIRK_MMC_DDR52 and only enabled for Intel SDHCI controllers so far. Generally, what it takes for a sdhci(4) front-end to enable support for DDR52 is to hook up the bridge method mmcbr_switch_vccq (which especially for 1.2 V signaling support is chip/board specific) and the sdhci_set_uhs_timing sdhci(4) method. As a side-effect, this change also fixes communication with some eMMC devices at SDR high speed mode with 52 MHz due to the signaling voltage and UHS bits in the SDHCI controller no longer being left in an inappropriate state. Compared to 52 MHz at SDR high speed which typically yields ~45 MB/s with the eMMC chips tested, throughput goes up to ~80 MB/s at DDR52. Additionally, this change already adds infrastructure and quite some code for modes up to HS400ES and SDR104 respectively (I did not want to add to much stuff at a time, though). Essentially, what is still missing in order to be able to activate support for these latter is is support for and handling of (re-)tuning. o In sdhci(4), add two tunables hw.sdhci.quirk_clear as well as hw.sdhci.quirk_set, which (when hooked up in the front-end) allow to set/clear sdhci(4) quirks for debugging and testing purposes. However, especially for SDHCI controllers on the PCI bus which have no specific support code so far and, thus, are picked up as generic SDHCI controllers, hw.sdhci.quirk_set allows for setting the necessary quirks (if required). o In mmc(4), check and handle the return values of some more function calls instead of assuming that everything went right. In case failures actually are not problematic, indicate that by casting the return value to void. Reviewed by: jmcneill
2017-03-19 23:27:17 +00:00
bus_timing_normal = 0, bus_timing_hs, bus_timing_uhs_sdr12,
bus_timing_uhs_sdr25, bus_timing_uhs_sdr50, bus_timing_uhs_ddr50,
bus_timing_uhs_sdr104, bus_timing_mmc_ddr52, bus_timing_mmc_hs200,
bus_timing_mmc_hs400, bus_timing_mmc_hs400es, bus_timing_max =
bus_timing_mmc_hs400es
};
struct mmc_ios {
uint32_t clock; /* Speed of the clock in Hz to move data */
enum mmc_vdd vdd; /* Voltage to apply to the power pins */
o Add support for eMMC DDR bus speed mode at 52 MHz to sdhci(4) and mmc(4). For the most part, this consists of support for: - Switching the signal voltage (VCCQ) to 1.8 V or (if supported by the host controller) to 1.2 V, - setting the UHS mode as appropriate in the SDHCI_HOST_CONTROL2 register, - setting the power class in the eMMC device according to the core supply voltage (VCC), - using different bits for enabling a bus width of 4 and 8 bits in the the eMMC device at DDR or higher timings respectively, - arbitrating timings faster than high speed if there actually are additional devices on the same MMC bus. Given that support for DDR52 is not denoted by SDHCI capability registers, availability of that timing is indicated by a new quirk SDHCI_QUIRK_MMC_DDR52 and only enabled for Intel SDHCI controllers so far. Generally, what it takes for a sdhci(4) front-end to enable support for DDR52 is to hook up the bridge method mmcbr_switch_vccq (which especially for 1.2 V signaling support is chip/board specific) and the sdhci_set_uhs_timing sdhci(4) method. As a side-effect, this change also fixes communication with some eMMC devices at SDR high speed mode with 52 MHz due to the signaling voltage and UHS bits in the SDHCI controller no longer being left in an inappropriate state. Compared to 52 MHz at SDR high speed which typically yields ~45 MB/s with the eMMC chips tested, throughput goes up to ~80 MB/s at DDR52. Additionally, this change already adds infrastructure and quite some code for modes up to HS400ES and SDR104 respectively (I did not want to add to much stuff at a time, though). Essentially, what is still missing in order to be able to activate support for these latter is is support for and handling of (re-)tuning. o In sdhci(4), add two tunables hw.sdhci.quirk_clear as well as hw.sdhci.quirk_set, which (when hooked up in the front-end) allow to set/clear sdhci(4) quirks for debugging and testing purposes. However, especially for SDHCI controllers on the PCI bus which have no specific support code so far and, thus, are picked up as generic SDHCI controllers, hw.sdhci.quirk_set allows for setting the necessary quirks (if required). o In mmc(4), check and handle the return values of some more function calls instead of assuming that everything went right. In case failures actually are not problematic, indicate that by casting the return value to void. Reviewed by: jmcneill
2017-03-19 23:27:17 +00:00
enum mmc_vccq vccq; /* Voltage to use for signaling */
enum mmc_bus_mode bus_mode;
enum mmc_chip_select chip_select;
enum mmc_bus_width bus_width;
enum mmc_power_mode power_mode;
enum mmc_bus_timing timing;
o Add support for eMMC DDR bus speed mode at 52 MHz to sdhci(4) and mmc(4). For the most part, this consists of support for: - Switching the signal voltage (VCCQ) to 1.8 V or (if supported by the host controller) to 1.2 V, - setting the UHS mode as appropriate in the SDHCI_HOST_CONTROL2 register, - setting the power class in the eMMC device according to the core supply voltage (VCC), - using different bits for enabling a bus width of 4 and 8 bits in the the eMMC device at DDR or higher timings respectively, - arbitrating timings faster than high speed if there actually are additional devices on the same MMC bus. Given that support for DDR52 is not denoted by SDHCI capability registers, availability of that timing is indicated by a new quirk SDHCI_QUIRK_MMC_DDR52 and only enabled for Intel SDHCI controllers so far. Generally, what it takes for a sdhci(4) front-end to enable support for DDR52 is to hook up the bridge method mmcbr_switch_vccq (which especially for 1.2 V signaling support is chip/board specific) and the sdhci_set_uhs_timing sdhci(4) method. As a side-effect, this change also fixes communication with some eMMC devices at SDR high speed mode with 52 MHz due to the signaling voltage and UHS bits in the SDHCI controller no longer being left in an inappropriate state. Compared to 52 MHz at SDR high speed which typically yields ~45 MB/s with the eMMC chips tested, throughput goes up to ~80 MB/s at DDR52. Additionally, this change already adds infrastructure and quite some code for modes up to HS400ES and SDR104 respectively (I did not want to add to much stuff at a time, though). Essentially, what is still missing in order to be able to activate support for these latter is is support for and handling of (re-)tuning. o In sdhci(4), add two tunables hw.sdhci.quirk_clear as well as hw.sdhci.quirk_set, which (when hooked up in the front-end) allow to set/clear sdhci(4) quirks for debugging and testing purposes. However, especially for SDHCI controllers on the PCI bus which have no specific support code so far and, thus, are picked up as generic SDHCI controllers, hw.sdhci.quirk_set allows for setting the necessary quirks (if required). o In mmc(4), check and handle the return values of some more function calls instead of assuming that everything went right. In case failures actually are not problematic, indicate that by casting the return value to void. Reviewed by: jmcneill
2017-03-19 23:27:17 +00:00
enum mmc_drv_type drv_type;
};
enum mmc_card_mode {
mode_mmc, mode_sd
};
o Add support for eMMC HS200 and HS400 bus speed modes at 200 MHz to sdhci(4), mmc(4) and mmcsd(4). For the most part, this consists of: - Correcting and extending the infrastructure for negotiating and enabling post-DDR52 modes already added as part of r315598. In fact, HS400ES now should work as well but hasn't been activated due to lack of corresponding hardware. - Adding support executing standard SDHCI initial tuning as well as re-tuning as required for eMMC HS200/HS400 and the fast UHS-I SD card modes. Currently, corresponding methods are only hooked up to the ACPI and PCI front-ends of sdhci(4), though. Moreover, sdhci(4) won't offer any modes requiring (re-)tuning to the MMC/SD layer in order to not break operations with other sdhci(4) front- ends. Likewise, sdhci(4) now no longer offers modes requiring the set_uhs_timing method introduced in r315598 to be implemented/ hooked up (previously, this method was used with DDR52 only, which in turn is only available with Intel controllers so far, i. e. no such limitation was necessary before). Similarly for 1.2/1.8 V VCCQ support and the switch_vccq method. - Addition of locking to the IOCTL half of mmcsd(4) to prevent races with detachment and suspension, especially since it's required to immediately switch away from RPMB partitions again after an access to these (so re-tuning can take place anew, given that the current eMMC specification v5.1 doesn't allow tuning commands to be issued with a RPMB partition selected). Therefore, the existing part_mtx lock in the mmcsd(4) softc is additionally renamed to disk_mtx in order to denote that it only refers to the disk(9) half, likewise for corresponding macros. On the system where the addition of DDR52 support increased the read throughput to ~80 MB/s (from ~45 MB/s at high speed), HS200 yields ~154 MB/s and HS400 ~187 MB/s, i. e. performance now has more than quadrupled compared to pre-r315598. Also, with the advent of (re-)tuning support, most infrastructure necessary for SD card UHS-I modes up to SDR104 now is also in place. Note, though, that the standard SDHCI way of (re-)tuning is special in several ways, which also is why sending the actual tuning requests to the device is part of sdhci(4). SDHCI implementations not following the specification, MMC and non-SDHCI SD card controllers likely will use a generic implementation in the MMC/SD layer for executing tuning, which hasn't been written so far, though. However, in fact this isn't a feature-only change; there are boards based on Intel Bay Trail where DDR52 is problematic and the suggested workaround is to use HS200 mode instead. So far exact details are unknown, however, i. e. whether that's due to a defect in these SoCs or on the boards. Moreover, due to the above changes requiring to be aware of possible MMC siblings in the fast path of mmc(4), corresponding information now is cached in mmc_softc. As a side-effect, mmc_calculate_clock(), mmc_delete_cards(), mmc_discover_cards() and mmc_rescan_cards() now all are guaranteed to operate on the same set of devices as there no longer is any use of device_get_children(9), which can fail in low memory situations. Likewise, mmc_calculate_clock() now longer will trigger a panic due to the latter. o Fix a bug in the failure reporting of mmcsd_delete(); in case of an error when the starting block of a previously stored erase request is used (in order to be able to erase a full erase sector worth of data), the starting block of the newly supplied bio_pblkno has to be returned for indicating no progress. Otherwise, upper layers might be told that a negative number of BIOs have been completed, leading to a panic. o Fix 2 bugs on resume: - Things done in fork1(9) like the acquisition of an SX lock or the sleepable memory allocation are incompatible with a MTX_DEF taken. Thus, mmcsd_resume() must not call kproc_create(9), which in turn uses fork1(9), with the disk_mtx (formerly part_mtx) held. - In mmc_suspend(), the bus is powered down, which in the typical case of a device being selected at the time of suspension, causes the device deselection as part of the bus acquisition by mmc(4) in mmc_scan() to fail as the bus isn't powered up again before later in mmc_go_discovery(). Thus, power down with the bus acquired in mmc_suspend(), which will trigger the deselection up-front. o Fix a memory leak in mmcsd_ioctl() in case copyin(9) fails. [1] o Fix missing variable initialization in mmc_switch_status(). [2] o Fix R1_SWITCH_ERROR detection in mmc_switch_status(). [3] o Handle the case of device_add_child(9) failing, for example due to a memory shortage, gracefully in mmc(4) and sdhci(4), including not leaking memory for the instance variables in case of mmc(4) (which might or might not fix [4] as the latter problem has been discovered independently). o Handle the case of an unknown SD CSD version in mmc_decode_csd_sd() gracefully instead of calling panic(9). o Again, check and handle the return values of some additional function calls in mmc(4) instead of assuming that everything went right or mark non-fatal errors by casting the return value to void. o Correct a typo in the Linux IOCTL compatibility; it should have been MMC_IOC_MULTI_CMD rather than MMC_IOC_CMD_MULTI. o Now that we are reaching ever faster speeds (more improvement in this regard is to be expected when adding ADMA support to sdhci(4)), apply a few micro-optimizations like predicting mmc(4) and sdhci(4) debugging to be off or caching erase sector and maximum data sizes as well support of block addressing in mmsd(4) (instead of doing 2 indirections on every read/write request for determining the maximum data size for example). Reported by: Coverity CID: 1372612 [1], 1372624 [2], 1372594 [3], 1007069 [4]
2017-07-23 16:11:47 +00:00
enum mmc_retune_req {
retune_req_none = 0, retune_req_normal, retune_req_reset
};
struct mmc_host {
int f_min;
int f_max;
uint32_t host_ocr;
uint32_t ocr;
uint32_t caps;
#define MMC_CAP_4_BIT_DATA (1 << 0) /* Can do 4-bit data transfers */
#define MMC_CAP_8_BIT_DATA (1 << 1) /* Can do 8-bit data transfers */
#define MMC_CAP_HSPEED (1 << 2) /* Can do High Speed transfers */
- Add support for eMMC "partitions". Besides the user data area, i. e. the default partition, eMMC v4.41 and later devices can additionally provide up to: 1 enhanced user data area partition 2 boot partitions 1 RPMB (Replay Protected Memory Block) partition 4 general purpose partitions (optionally with a enhanced or extended attribute) Of these "partitions", only the enhanced user data area one actually slices the user data area partition and, thus, gets handled with the help of geom_flashmap(4). The other types of partitions have address space independent from the default partition and need to be switched to via CMD6 (SWITCH), i. e. constitute a set of additional "disks". The second kind of these "partitions" doesn't fit that well into the design of mmc(4) and mmcsd(4). I've decided to let mmcsd(4) hook all of these "partitions" up as disk(9)'s (except for the RPMB partition as it didn't seem to make much sense to be able to put a file-system there and may require authentication; therefore, RPMB partitions are solely accessible via the newly added IOCTL interface currently; see also below). This approach for one resulted in cleaner code. Second, it retains the notion of mmcsd(4) children corresponding to a single physical device each. With the addition of some layering violations, it also would have been possible for mmc(4) to add separate mmcsd(4) instances with one disk each for all of these "partitions", however. Still, both mmc(4) and mmcsd(4) share some common code now e. g. for issuing CMD6, which has been factored out into mmc_subr.c. Besides simply subdividing eMMC devices, some Intel NUCs having UEFI code in the boot partitions etc., another use case for the partition support is the activation of pseudo-SLC mode, which manufacturers of eMMC chips typically associate with the enhanced user data area and/ or the enhanced attribute of general purpose partitions. CAVEAT EMPTOR: Partitioning eMMC devices is a one-time operation. - Now that properly issuing CMD6 is crucial (so data isn't written to the wrong partition for example), make a step into the direction of correctly handling the timeout for these commands in the MMC layer. Also, do a SEND_STATUS when CMD6 is invoked with an R1B response as recommended by relevant specifications. However, quite some work is left to be done in this regard; all other R1B-type commands done by the MMC layer also should be followed by a SEND_STATUS (CMD13), the erase timeout calculations/handling as documented in specifications are entirely ignored so far, the MMC layer doesn't provide timeouts applicable up to the bridge drivers and at least sdhci(4) currently is hardcoding 1 s as timeout for all command types unconditionally. Let alone already available return codes often not being checked in the MMC layer ... - Add an IOCTL interface to mmcsd(4); this is sufficiently compatible with Linux so that the GNU mmc-utils can be ported to and used with FreeBSD (note that due to the remaining deficiencies outlined above SANITIZE operations issued by/with `mmc` currently most likely will fail). These latter will be added to ports as sysutils/mmc-utils in a bit. Among others, the `mmc` tool of the GNU mmc-utils allows for partitioning eMMC devices (tested working). - For devices following the eMMC specification v4.41 or later, year 0 is 2013 rather than 1997; so correct this for assembling the device ID string properly. - Let mmcsd.ko depend on mmc.ko. Additionally, bump MMC_VERSION as at least for some of the above a matching pair is required. - In the ACPI front-end of sdhci(4) describe the Intel eMMC and SDXC controllers as such in order to match the PCI one. Additionally, in the entry for the 80860F14 SDXC controller remove the eMMC-only SDHCI_QUIRK_INTEL_POWER_UP_RESET. OKed by: imp Submitted by: ian (mmc_switch_status() implementation)
2017-03-16 22:23:04 +00:00
#define MMC_CAP_BOOT_NOACC (1 << 4) /* Cannot access boot partitions */
#define MMC_CAP_WAIT_WHILE_BUSY (1 << 5) /* Host waits for busy responses */
o Add support for eMMC DDR bus speed mode at 52 MHz to sdhci(4) and mmc(4). For the most part, this consists of support for: - Switching the signal voltage (VCCQ) to 1.8 V or (if supported by the host controller) to 1.2 V, - setting the UHS mode as appropriate in the SDHCI_HOST_CONTROL2 register, - setting the power class in the eMMC device according to the core supply voltage (VCC), - using different bits for enabling a bus width of 4 and 8 bits in the the eMMC device at DDR or higher timings respectively, - arbitrating timings faster than high speed if there actually are additional devices on the same MMC bus. Given that support for DDR52 is not denoted by SDHCI capability registers, availability of that timing is indicated by a new quirk SDHCI_QUIRK_MMC_DDR52 and only enabled for Intel SDHCI controllers so far. Generally, what it takes for a sdhci(4) front-end to enable support for DDR52 is to hook up the bridge method mmcbr_switch_vccq (which especially for 1.2 V signaling support is chip/board specific) and the sdhci_set_uhs_timing sdhci(4) method. As a side-effect, this change also fixes communication with some eMMC devices at SDR high speed mode with 52 MHz due to the signaling voltage and UHS bits in the SDHCI controller no longer being left in an inappropriate state. Compared to 52 MHz at SDR high speed which typically yields ~45 MB/s with the eMMC chips tested, throughput goes up to ~80 MB/s at DDR52. Additionally, this change already adds infrastructure and quite some code for modes up to HS400ES and SDR104 respectively (I did not want to add to much stuff at a time, though). Essentially, what is still missing in order to be able to activate support for these latter is is support for and handling of (re-)tuning. o In sdhci(4), add two tunables hw.sdhci.quirk_clear as well as hw.sdhci.quirk_set, which (when hooked up in the front-end) allow to set/clear sdhci(4) quirks for debugging and testing purposes. However, especially for SDHCI controllers on the PCI bus which have no specific support code so far and, thus, are picked up as generic SDHCI controllers, hw.sdhci.quirk_set allows for setting the necessary quirks (if required). o In mmc(4), check and handle the return values of some more function calls instead of assuming that everything went right. In case failures actually are not problematic, indicate that by casting the return value to void. Reviewed by: jmcneill
2017-03-19 23:27:17 +00:00
#define MMC_CAP_UHS_SDR12 (1 << 6) /* Can do UHS SDR12 */
#define MMC_CAP_UHS_SDR25 (1 << 7) /* Can do UHS SDR25 */
#define MMC_CAP_UHS_SDR50 (1 << 8) /* Can do UHS SDR50 */
#define MMC_CAP_UHS_SDR104 (1 << 9) /* Can do UHS SDR104 */
#define MMC_CAP_UHS_DDR50 (1 << 10) /* Can do UHS DDR50 */
#define MMC_CAP_MMC_DDR52_120 (1 << 11) /* Can do eMMC DDR52 at 1.2 V */
#define MMC_CAP_MMC_DDR52_180 (1 << 12) /* Can do eMMC DDR52 at 1.8 V */
#define MMC_CAP_MMC_DDR52 (MMC_CAP_MMC_DDR52_120 | MMC_CAP_MMC_DDR52_180)
#define MMC_CAP_MMC_HS200_120 (1 << 13) /* Can do eMMC HS200 at 1.2 V */
#define MMC_CAP_MMC_HS200_180 (1 << 14) /* Can do eMMC HS200 at 1.8 V */
#define MMC_CAP_MMC_HS200 (MMC_CAP_MMC_HS200_120| MMC_CAP_MMC_HS200_180)
#define MMC_CAP_MMC_HS400_120 (1 << 15) /* Can do eMMC HS400 at 1.2 V */
#define MMC_CAP_MMC_HS400_180 (1 << 16) /* Can do eMMC HS400 at 1.8 V */
#define MMC_CAP_MMC_HS400 (MMC_CAP_MMC_HS400_120 | MMC_CAP_MMC_HS400_180)
#define MMC_CAP_MMC_HSX00_120 (MMC_CAP_MMC_HS200_120 | MMC_CAP_MMC_HS400_120)
#define MMC_CAP_MMC_ENH_STROBE (1 << 17) /* Can do eMMC Enhanced Strobe */
#define MMC_CAP_SIGNALING_120 (1 << 18) /* Can do signaling at 1.2 V */
#define MMC_CAP_SIGNALING_180 (1 << 19) /* Can do signaling at 1.8 V */
#define MMC_CAP_SIGNALING_330 (1 << 20) /* Can do signaling at 3.3 V */
#define MMC_CAP_DRIVER_TYPE_A (1 << 21) /* Can do Driver Type A */
#define MMC_CAP_DRIVER_TYPE_C (1 << 22) /* Can do Driver Type C */
#define MMC_CAP_DRIVER_TYPE_D (1 << 23) /* Can do Driver Type D */
enum mmc_card_mode mode;
struct mmc_ios ios; /* Current state of the host */
};
#ifdef _KERNEL
extern driver_t mmc_driver;
extern devclass_t mmc_devclass;
#define MMC_VERSION 5
#define MMC_DECLARE_BRIDGE(name) \
DRIVER_MODULE(mmc, name, mmc_driver, mmc_devclass, NULL, NULL); \
MODULE_DEPEND(name, mmc, MMC_VERSION, MMC_VERSION, MMC_VERSION);
- Add support for eMMC "partitions". Besides the user data area, i. e. the default partition, eMMC v4.41 and later devices can additionally provide up to: 1 enhanced user data area partition 2 boot partitions 1 RPMB (Replay Protected Memory Block) partition 4 general purpose partitions (optionally with a enhanced or extended attribute) Of these "partitions", only the enhanced user data area one actually slices the user data area partition and, thus, gets handled with the help of geom_flashmap(4). The other types of partitions have address space independent from the default partition and need to be switched to via CMD6 (SWITCH), i. e. constitute a set of additional "disks". The second kind of these "partitions" doesn't fit that well into the design of mmc(4) and mmcsd(4). I've decided to let mmcsd(4) hook all of these "partitions" up as disk(9)'s (except for the RPMB partition as it didn't seem to make much sense to be able to put a file-system there and may require authentication; therefore, RPMB partitions are solely accessible via the newly added IOCTL interface currently; see also below). This approach for one resulted in cleaner code. Second, it retains the notion of mmcsd(4) children corresponding to a single physical device each. With the addition of some layering violations, it also would have been possible for mmc(4) to add separate mmcsd(4) instances with one disk each for all of these "partitions", however. Still, both mmc(4) and mmcsd(4) share some common code now e. g. for issuing CMD6, which has been factored out into mmc_subr.c. Besides simply subdividing eMMC devices, some Intel NUCs having UEFI code in the boot partitions etc., another use case for the partition support is the activation of pseudo-SLC mode, which manufacturers of eMMC chips typically associate with the enhanced user data area and/ or the enhanced attribute of general purpose partitions. CAVEAT EMPTOR: Partitioning eMMC devices is a one-time operation. - Now that properly issuing CMD6 is crucial (so data isn't written to the wrong partition for example), make a step into the direction of correctly handling the timeout for these commands in the MMC layer. Also, do a SEND_STATUS when CMD6 is invoked with an R1B response as recommended by relevant specifications. However, quite some work is left to be done in this regard; all other R1B-type commands done by the MMC layer also should be followed by a SEND_STATUS (CMD13), the erase timeout calculations/handling as documented in specifications are entirely ignored so far, the MMC layer doesn't provide timeouts applicable up to the bridge drivers and at least sdhci(4) currently is hardcoding 1 s as timeout for all command types unconditionally. Let alone already available return codes often not being checked in the MMC layer ... - Add an IOCTL interface to mmcsd(4); this is sufficiently compatible with Linux so that the GNU mmc-utils can be ported to and used with FreeBSD (note that due to the remaining deficiencies outlined above SANITIZE operations issued by/with `mmc` currently most likely will fail). These latter will be added to ports as sysutils/mmc-utils in a bit. Among others, the `mmc` tool of the GNU mmc-utils allows for partitioning eMMC devices (tested working). - For devices following the eMMC specification v4.41 or later, year 0 is 2013 rather than 1997; so correct this for assembling the device ID string properly. - Let mmcsd.ko depend on mmc.ko. Additionally, bump MMC_VERSION as at least for some of the above a matching pair is required. - In the ACPI front-end of sdhci(4) describe the Intel eMMC and SDXC controllers as such in order to match the PCI one. Additionally, in the entry for the 80860F14 SDXC controller remove the eMMC-only SDHCI_QUIRK_INTEL_POWER_UP_RESET. OKed by: imp Submitted by: ian (mmc_switch_status() implementation)
2017-03-16 22:23:04 +00:00
#define MMC_DEPEND(name) \
MODULE_DEPEND(name, mmc, MMC_VERSION, MMC_VERSION, MMC_VERSION);
#endif /* _KERNEL */
#endif /* DEV_MMC_BRIDGE_H */