summaryrefslogtreecommitdiffstatshomepage
path: root/src/mame/machine/interpro_ioga.h
diff options
context:
space:
mode:
author Vas Crabb <vas@vastheman.com>2018-07-07 02:40:29 +1000
committer Vas Crabb <vas@vastheman.com>2018-07-07 02:40:29 +1000
commitc3fb11c2c98a5c28ece6a27093a0f9def350ac64 (patch)
treec68b38f05ed1d32358add721fda7f45e8803479f /src/mame/machine/interpro_ioga.h
parent5d9e33b786d7ef452317439359f3cbd8cc920513 (diff)
devcb3
There are multiple issues with the current device callbacks: * They always dispatch through a pointer-to-member * Chained callbacks are a linked list so the branch unit can't predict the early * There's a runtime decision made on the left/right shift direction * There are runtime NULL checks on various objects * Binding a lambda isn't practical * Arbitrary transformations are not supported * When chaining callbacks it isn't clear what the MCFG_DEVCB_ modifiers apply to * It isn't possible to just append to a callback in derived configuration * The macros need a magic, hidden local called devcb * Moving code that uses the magic locals around is error-prone * Writing the MCFG_ macros to make a device usable is a pain * You can't discover applicable MCFG_ macros with intellisense * Macros are not scoped * Using an inappropriate macro isn't detected at compile time * Lots of other things This changeset overcomes the biggest obstacle to remving MCFG_ macros altogether. Essentially, to allow a devcb to be configured, call .bind() and expose the result (a bind target for the callback). Bind target methods starting with "set" repace the current callbacks; methods starting with "append" append to them. You can't reconfigure a callback after resolving it. There's no need to use a macro matching the handler signatures - use FUNC for everything. Current device is implied if no tag/finder is supplied (no need for explicit this). Lambdas are supported, and the memory space and offset are optional. These kinds of things work: * .read_cb().set([this] () { return something; }); * .read_cb().set([this] (offs_t offset) { return ~offset; }); * .write_cb().set([this] (offs_t offset, u8 data) { m_array[offset] = data; }); * .write_cb().set([this] (int state) { some_var = state; }); Arbitrary transforms are allowed, and they can modify offset/mask for example: * .read_cb().set(FUNC(my_state::handler)).transform([] (u8 data) { return bitswap<4>(data, 1, 3, 0, 2); }); * .read_cb().set(m_dev, FUNC(some_device::member)).transform([] (offs_t &offset, u8 data) { offset ^= 3; return data; }); It's possible to stack arbitrary transforms, at the cost of compile time (the whole transform stack gets inlined at compile time). Shifts count as an arbitrary transform, but mask/exor does not. Order of mask/shift/exor now matters. Modifications are applied in the specified order. These are NOT EQUIVALENT: * .read_cb().set(FUNC(my_state::handler)).mask(0x06).lshift(2); * .read_cb().set(FUNC(my_state::handler)).lshift(2).mask(0x06); The bit helper no longer reverses its behaviour for read callbacks, and I/O ports are no longer aware of the field mask. Binding a read callback to no-op is not supported - specify a constant. The GND and VCC aliases have been removed intentionally - they're TTL-centric, and were already being abused. Other quirks have been preserved, including write logger only logging when the data is non-zero (quite unhelpful in many of the cases where it's used). Legacy syntax is still supported for simple cases, but will be phased out. New devices should not have MCFG_ macros. I don't think I've missed any fundamental issues, but if I've broken something, let me know.
Diffstat (limited to 'src/mame/machine/interpro_ioga.h')
-rw-r--r--src/mame/machine/interpro_ioga.h27
1 files changed, 18 insertions, 9 deletions
diff --git a/src/mame/machine/interpro_ioga.h b/src/mame/machine/interpro_ioga.h
index cb7b8529788..dee30060b17 100644
--- a/src/mame/machine/interpro_ioga.h
+++ b/src/mame/machine/interpro_ioga.h
@@ -7,27 +7,27 @@
#pragma once
#define MCFG_INTERPRO_IOGA_NMI_CB(_out_nmi) \
- devcb = &downcast<interpro_ioga_device &>(*device).set_out_nmi_callback(DEVCB_##_out_nmi);
+ downcast<interpro_ioga_device &>(*device).set_out_nmi_callback(DEVCB_##_out_nmi);
#define MCFG_INTERPRO_IOGA_IRQ_CB(_out_irq) \
- devcb = &downcast<interpro_ioga_device &>(*device).set_out_irq_callback(DEVCB_##_out_irq);
+ downcast<interpro_ioga_device &>(*device).set_out_irq_callback(DEVCB_##_out_irq);
#define MCFG_INTERPRO_IOGA_IVEC_CB(_out_ivec) \
- devcb = &downcast<interpro_ioga_device &>(*device).set_out_irq_vector_callback(DEVCB_##_out_ivec);
+ downcast<interpro_ioga_device &>(*device).set_out_irq_vector_callback(DEVCB_##_out_ivec);
#define MCFG_INTERPRO_IOGA_DMA_CB(_channel, _dma_r, _dma_w) \
- devcb = &downcast<interpro_ioga_device &>(*device).set_dma_r_callback(_channel, DEVCB_##_dma_r); \
- devcb = &downcast<interpro_ioga_device &>(*device).set_dma_w_callback(_channel, DEVCB_##_dma_w);
+ downcast<interpro_ioga_device &>(*device).set_dma_r_callback(_channel, DEVCB_##_dma_r); \
+ downcast<interpro_ioga_device &>(*device).set_dma_w_callback(_channel, DEVCB_##_dma_w);
#define MCFG_INTERPRO_IOGA_SERIAL_DMA_CB(_channel, _dma_r, _dma_w) \
- devcb = &downcast<interpro_ioga_device &>(*device).set_serial_dma_r_callback(_channel, DEVCB_##_dma_r); \
- devcb = &downcast<interpro_ioga_device &>(*device).set_serial_dma_w_callback(_channel, DEVCB_##_dma_w);
+ downcast<interpro_ioga_device &>(*device).set_serial_dma_r_callback(_channel, DEVCB_##_dma_r); \
+ downcast<interpro_ioga_device &>(*device).set_serial_dma_w_callback(_channel, DEVCB_##_dma_w);
#define MCFG_INTERPRO_IOGA_FDCTC_CB(_tc) \
- devcb = &downcast<interpro_ioga_device &>(*device).set_fdc_tc_callback(DEVCB_##_tc);
+ downcast<interpro_ioga_device &>(*device).set_fdc_tc_callback(DEVCB_##_tc);
#define MCFG_INTERPRO_IOGA_ETH_CA_CB(_ca) \
- devcb = &downcast<interpro_ioga_device &>(*device).set_eth_ca_callback(DEVCB_##_ca);
+ downcast<interpro_ioga_device &>(*device).set_eth_ca_callback(DEVCB_##_ca);
#define MCFG_INTERPRO_IOGA_MEMORY(_tag, _spacenum) \
downcast<interpro_ioga_device &>(*device).set_memory(_tag, _spacenum);
@@ -85,6 +85,15 @@ public:
template <class Object> devcb_base &set_serial_dma_w_callback(int channel, Object &&cb) { return m_serial_dma_channel[channel].device_w.set_callback(std::forward<Object>(cb)); }
template <class Object> devcb_base &set_fdc_tc_callback(Object &&cb) { return m_fdc_tc_func.set_callback(std::forward<Object>(cb)); }
template <class Object> devcb_base &set_eth_ca_callback(Object &&cb) { return m_eth_ca_func.set_callback(std::forward<Object>(cb)); }
+ auto out_nmi_callback() { return m_out_nmi_func.bind(); }
+ auto out_irq_callback() { return m_out_irq_func.bind(); }
+ auto out_irq_vector_callback() { return m_out_irq_vector_func.bind(); }
+ template <unsigned Chan> auto dma_r_callback() { return m_dma_channel[Chan].device_r.bind(); }
+ template <unsigned Chan> auto dma_w_callback() { return m_dma_channel[Chan].device_w.bind(); }
+ template <unsigned Chan> auto serial_dma_r_callback() { return m_serial_dma_channel[Chan].device_r.bind(); }
+ template <unsigned Chan> auto serial_dma_w_callback() { return m_serial_dma_channel[Chan].device_w.bind(); }
+ auto fdc_tc_callback() { return m_fdc_tc_func.bind(); }
+ auto eth_ca_callback() { return m_eth_ca_func.bind(); }
void set_memory(const char *const tag, const int spacenum)
{