ARM: omap: clk: add clk_prepare and clk_unprepare
As part of Common Clk Framework (CCF) the clk_enable() operation was split into a clk_prepare() which could sleep, and a clk_enable() which should never sleep. Similarly the clk_disable() was split into clk_disable() and clk_unprepare(). This was needed to handle complex cases where in a clk gate/ungate would require a slow and a fast part to be implemented. None of the clocks below seem to be in the 'complex' clocks category and are just simple clocks which are enabled/disabled through simple register writes. Most of the instances also seem to be called in non-atomic context which means its safe to move all of those from using a clk_enable() to clk_prepare_enable() and clk_disable() to clk_disable_unprepare(). For some others, mainly the ones handled through the hwmod framework there is a possibility that they get called in either an atomic or a non-atomic context. The way these get handled below work only as long as clk_prepare is implemented as a no-op (which is the case today) since this gets called very early at boot while most subsystems are unavailable. Hence these are marked with a *HACK* comment, which says we need to re-visit these once we start doing something meaningful with clk_prepare/clk_unprepare like doing voltage scaling or something that involves i2c. This is in preparation of OMAP moving to CCF. Based on initial changes from Mike Turquette. Signed-off-by: Rajendra Nayak <rnayak@ti.com> Signed-off-by: Paul Walmsley <paul@pwsan.com>
This commit is contained in:
parent
a04bcc231c
commit
4d7cb45ee8
7 changed files with 40 additions and 13 deletions
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@ -202,7 +202,7 @@ static inline void __init apollon_init_smc91x(void)
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return;
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}
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clk_enable(gpmc_fck);
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clk_prepare_enable(gpmc_fck);
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rate = clk_get_rate(gpmc_fck);
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eth_cs = APOLLON_ETH_CS;
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@ -246,7 +246,7 @@ static inline void __init apollon_init_smc91x(void)
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gpmc_cs_free(APOLLON_ETH_CS);
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}
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out:
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clk_disable(gpmc_fck);
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clk_disable_unprepare(gpmc_fck);
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clk_put(gpmc_fck);
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}
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@ -265,9 +265,9 @@ static inline void __init h4_init_debug(void)
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return;
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}
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clk_enable(gpmc_fck);
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clk_prepare_enable(gpmc_fck);
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rate = clk_get_rate(gpmc_fck);
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clk_disable(gpmc_fck);
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clk_disable_unprepare(gpmc_fck);
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clk_put(gpmc_fck);
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if (is_gpmc_muxed())
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@ -311,7 +311,7 @@ static inline void __init h4_init_debug(void)
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gpmc_cs_free(eth_cs);
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out:
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clk_disable(gpmc_fck);
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clk_disable_unprepare(gpmc_fck);
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clk_put(gpmc_fck);
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}
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@ -171,7 +171,7 @@ static void __init omap4_ehci_init(void)
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return;
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}
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clk_set_rate(phy_ref_clk, 19200000);
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clk_enable(phy_ref_clk);
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clk_prepare_enable(phy_ref_clk);
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/* disable the power to the usb hub prior to init and reset phy+hub */
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ret = gpio_request_array(panda_ehci_gpios,
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@ -64,15 +64,15 @@ void __init omap3_clk_lock_dpll5(void)
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dpll5_clk = clk_get(NULL, "dpll5_ck");
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clk_set_rate(dpll5_clk, DPLL5_FREQ_FOR_USBHOST);
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clk_enable(dpll5_clk);
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clk_prepare_enable(dpll5_clk);
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/* Program dpll5_m2_clk divider for no division */
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dpll5_m2_clk = clk_get(NULL, "dpll5_m2_ck");
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clk_enable(dpll5_m2_clk);
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clk_prepare_enable(dpll5_m2_clk);
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clk_set_rate(dpll5_m2_clk, DPLL5_FREQ_FOR_USBHOST);
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clk_disable(dpll5_m2_clk);
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clk_disable(dpll5_clk);
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clk_disable_unprepare(dpll5_m2_clk);
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clk_disable_unprepare(dpll5_clk);
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return;
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}
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@ -488,7 +488,7 @@ int omap_dss_reset(struct omap_hwmod *oh)
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for (i = oh->opt_clks_cnt, oc = oh->opt_clks; i > 0; i--, oc++)
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if (oc->_clk)
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clk_enable(oc->_clk);
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clk_prepare_enable(oc->_clk);
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dispc_disable_outputs();
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@ -515,7 +515,7 @@ int omap_dss_reset(struct omap_hwmod *oh)
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for (i = oh->opt_clks_cnt, oc = oh->opt_clks; i > 0; i--, oc++)
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if (oc->_clk)
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clk_disable(oc->_clk);
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clk_disable_unprepare(oc->_clk);
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r = (c == MAX_MODULE_SOFTRESET_WAIT) ? -ETIMEDOUT : 0;
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@ -879,7 +879,7 @@ static int __init gpmc_init(void)
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BUG();
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}
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clk_enable(gpmc_l3_clk);
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clk_prepare_enable(gpmc_l3_clk);
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l = gpmc_read_reg(GPMC_REVISION);
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printk(KERN_INFO "GPMC revision %d.%d\n", (l >> 4) & 0x0f, l & 0x0f);
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@ -685,6 +685,15 @@ static int _init_main_clk(struct omap_hwmod *oh)
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oh->name, oh->main_clk);
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return -EINVAL;
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}
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/*
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* HACK: This needs a re-visit once clk_prepare() is implemented
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* to do something meaningful. Today its just a no-op.
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* If clk_prepare() is used at some point to do things like
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* voltage scaling etc, then this would have to be moved to
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* some point where subsystems like i2c and pmic become
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* available.
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*/
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clk_prepare(oh->_clk);
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if (!oh->_clk->clkdm)
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pr_warning("omap_hwmod: %s: missing clockdomain for %s.\n",
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@ -722,6 +731,15 @@ static int _init_interface_clks(struct omap_hwmod *oh)
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ret = -EINVAL;
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}
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os->_clk = c;
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/*
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* HACK: This needs a re-visit once clk_prepare() is implemented
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* to do something meaningful. Today its just a no-op.
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* If clk_prepare() is used at some point to do things like
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* voltage scaling etc, then this would have to be moved to
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* some point where subsystems like i2c and pmic become
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* available.
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*/
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clk_prepare(os->_clk);
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}
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return ret;
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@ -749,6 +767,15 @@ static int _init_opt_clks(struct omap_hwmod *oh)
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ret = -EINVAL;
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}
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oc->_clk = c;
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/*
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* HACK: This needs a re-visit once clk_prepare() is implemented
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* to do something meaningful. Today its just a no-op.
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* If clk_prepare() is used at some point to do things like
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* voltage scaling etc, then this would have to be moved to
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* some point where subsystems like i2c and pmic become
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* available.
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*/
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clk_prepare(oc->_clk);
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}
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return ret;
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