tilelink2 RegField: clarify restrictions on functions
RegMapper is fundamentaly DecoupledIO. Let the user take advantage of this. Clarify that rules on data handling.
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@ -3,7 +3,7 @@
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package uncore.tilelink2
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import Chisel._
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import chisel3.util.{Irrevocable, IrrevocableIO}
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import chisel3.util.{ReadyValidIO}
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import util.{SimpleRegIO}
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case class RegReadFn private(combinational: Boolean, fn: (Bool, Bool) => (Bool, Bool, UInt))
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@ -12,9 +12,8 @@ object RegReadFn
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// (ivalid: Bool, oready: Bool) => (iready: Bool, ovalid: Bool, data: UInt)
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// iready may combinationally depend on oready
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// all other combinational dependencies forbidden (e.g. ovalid <= ivalid)
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// iready must eventually go high without requiring ivalid to go high
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// ovalid must eventually go high without requiring oready to go high
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// effects must become visible on the cycle after ovalid && oready
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// data is only inspected when ovalid && oready
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implicit def apply(x: (Bool, Bool) => (Bool, Bool, UInt)) =
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new RegReadFn(false, x)
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implicit def apply(x: RegisterReadIO[UInt]): RegReadFn =
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@ -25,17 +24,14 @@ object RegReadFn
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})
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// (ready: Bool) => (valid: Bool, data: UInt)
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// valid must not combinationally depend on ready
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// valid must eventually go high without requiring ready to go high
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// => this means that reading cannot trigger creation of the output data
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// if you need this, use the more general i&o ready-valid method above
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// effects must become visible on the cycle after valid && ready
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implicit def apply(x: Bool => (Bool, UInt)) =
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new RegReadFn(true, { case (_, oready) =>
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val (ovalid, data) = x(oready)
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(Bool(true), ovalid, data)
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})
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// read from a IrrevocableIO (only safe if there is a consistent source of data)
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implicit def apply(x: IrrevocableIO[UInt]):RegReadFn = RegReadFn(ready => { x.ready := ready; (x.valid, x.bits) })
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// read from a ReadyValidIO (only safe if there is a consistent source of data)
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implicit def apply(x: ReadyValidIO[UInt]):RegReadFn = RegReadFn(ready => { x.ready := ready; (x.valid, x.bits) })
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// read from a register
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implicit def apply(x: UInt):RegReadFn = RegReadFn(ready => (Bool(true), x))
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// noop
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@ -48,9 +44,8 @@ object RegWriteFn
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// (ivalid: Bool, oready: Bool, data: UInt) => (iready: Bool, ovalid: Bool)
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// iready may combinationally depend on both oready and data
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// all other combinational dependencies forbidden (e.g. ovalid <= ivalid)
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// iready must eventually go high without requiring ivalid to go high
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// ovalid must eventually go high without requiring oready to go high
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// effects must become visible on the cycle after ovalid && oready
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// data should only be used for an effect when ivalid && iready
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implicit def apply(x: (Bool, Bool, UInt) => (Bool, Bool)) =
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new RegWriteFn(false, x)
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implicit def apply(x: RegisterWriteIO[UInt]): RegWriteFn =
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@ -62,15 +57,15 @@ object RegWriteFn
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})
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// (valid: Bool, data: UInt) => (ready: Bool)
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// ready may combinationally depend on data (but not valid)
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// ready must eventually go high without requiring valid to go high
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// effects must become visible on the cycle after valid && ready
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implicit def apply(x: (Bool, UInt) => Bool) =
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// combinational => data valid on oready
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new RegWriteFn(true, { case (_, oready, data) =>
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(Bool(true), x(oready, data))
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})
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// write to a IrrevocableIO (only safe if there is a consistent sink draining data)
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implicit def apply(x: IrrevocableIO[UInt]): RegWriteFn = RegWriteFn((valid, data) => { x.valid := valid; x.bits := data; x.ready })
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// write to a DecoupledIO (only safe if there is a consistent sink draining data)
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// NOTE: this is not an IrrevocableIO (even on TL2) because other fields could cause a lowered valid
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implicit def apply(x: DecoupledIO[UInt]): RegWriteFn = RegWriteFn((valid, data) => { x.valid := valid; x.bits := data; x.ready })
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// updates a register (or adds a mux to a wire)
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implicit def apply(x: UInt): RegWriteFn = RegWriteFn((valid, data) => { when (valid) { x := data }; Bool(true) })
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// noop
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