1
2
3
4
5
6
7
8
9
10
11
12
13
14
15
16
17
18
19
20
21
22
23
24
25
26
27
28
29
30
31
32
33
34
35
36
37
38
39
40
41
42
43
44
45
46
47
48
49
50
51
52
53
54
55
56
57
58
59
60
61
62
63
64
65
66
67
68
69
70
71
72
73
74
75
76
77
78
79
80
81
82
83
84
85
86
87
88
89
90
91
92
93
94
95
96
97
98
99
100
101
102
103
104
105
106
107
108
109
110
111
112
113
114
115
116
117
118
119
120
121
122
123
124
125
126
127
128
129
130
131
132
133
134
135
136
137
138
139
140
141
142
143
144
145
146
147
148
149
150
151
152
153
154
155
156
157
158
159
160
161
162
163
164
165
166
167
168
169
170
171
172
173
174
175
176
177
178
179
180
181
182
183
184
185
186
187
188
189
190
191
192
193
194
195
196
197
198
199
|
/* -------------------------------------------
Copyright (C) 2024-2025, Amlal El Mahrouss, all rights reserved.
------------------------------------------- */
#include <ArchKit/ArchKit.h>
#include <KernelKit/DebugOutput.h>
#include <NewKit/New.h>
#include <NewKit/Utils.h>
#include <modules/CoreGfx/CoreGfx.h>
#include <modules/CoreGfx/TextGfx.h>
namespace Kernel {
enum CommStatus : UInt16 {
kStateInvalid = 0x64,
kStateReady = 0xCF,
kStateTransmit = 0xFC,
kStateCnt = 3
};
namespace Detail {
constexpr ATTRIBUTE(unused) const UInt16 kPort = 0x3F8;
STATIC ATTRIBUTE(unused) UInt16 kState = kStateInvalid;
/// @brief Init COM1.
/// @return
template <UInt16 PORT>
bool hal_serial_init() noexcept {
if (kState == kStateReady || kState == kStateTransmit) return true;
HAL::rt_out8(PORT + 1, 0x00); // Disable all interrupts
HAL::rt_out8(PORT + 3, 0x80); // Enable DLAB (set baud rate divisor)
HAL::rt_out8(PORT + 0, 0x03); // Set divisor to 3 (lo byte) 38400 baud
HAL::rt_out8(PORT + 1, 0x00); // (hi byte)
HAL::rt_out8(PORT + 3, 0x03); // 8 bits, no parity, one stop bit
HAL::rt_out8(PORT + 2, 0xC7); // Enable FIFO, clear them, with 14-byte threshold
HAL::rt_out8(PORT + 4, 0x0B); // IRQs enabled, RTS/DSR set
HAL::rt_out8(PORT + 4, 0x1E); // Set in loopback mode, test the serial chip
HAL::rt_out8(PORT + 0, 0xAE); // Test serial chip (send byte 0xAE and check if
// serial returns same byte)
// Check if serial is faulty (i.e: not same byte as sent)
if (HAL::rt_in8(PORT) != 0xAE) {
return false;
}
kState = kStateReady;
// If serial is not faulty set it in normal operation mode
// (not-loopback with IRQs enabled and OUT#1 and OUT#2 bits enabled)
HAL::rt_out8(PORT + 4, 0x0F);
return true;
}
} // namespace Detail
TerminalDevice::~TerminalDevice() = default;
EXTERN_C void ke_utf_io_write(IDeviceObject<const Utf8Char*>* obj, const Utf8Char* bytes) {
NE_UNUSED(bytes);
NE_UNUSED(obj);
#ifdef __DEBUG__
Detail::hal_serial_init<Detail::kPort>();
if (!bytes || Detail::kState != kStateReady) return;
if (*bytes == 0) return;
Detail::kState = kStateTransmit;
SizeT index = 0;
SizeT len = 0;
index = 0;
len = urt_string_len(bytes);
while (index < len) {
if (bytes[index] == '\r') HAL::rt_out8(Detail::kPort, '\r');
HAL::rt_out8(Detail::kPort, bytes[index] == '\r' ? '\n' : bytes[index]);
++index;
}
Detail::kState = kStateReady;
#endif // __DEBUG__
}
EXTERN_C void ke_io_write(IDeviceObject<const Char*>* obj, const Char* bytes) {
NE_UNUSED(bytes);
NE_UNUSED(obj);
#ifdef __DEBUG__
Detail::hal_serial_init<Detail::kPort>();
if (!bytes || Detail::kState != kStateReady) return;
if (*bytes == 0) return;
Detail::kState = kStateTransmit;
SizeT index = 0;
SizeT len = 0;
index = 0;
len = rt_string_len(bytes);
STATIC SizeT x = kFontSizeX, y = kFontSizeY;
while (index < len) {
if (bytes[index] == '\r') HAL::rt_out8(Detail::kPort, '\r');
HAL::rt_out8(Detail::kPort, bytes[index] == '\r' ? '\n' : bytes[index]);
char tmp_str[2];
tmp_str[0] = bytes[index];
tmp_str[1] = 0;
fb_render_string(tmp_str, y, x, RGB(0xff, 0xff, 0xff));
if (bytes[index] == '\r') {
y += kFontSizeY;
x = kFontSizeX;
}
x += kFontSizeX;
if (x > kHandoverHeader->f_GOP.f_Width) {
x = kFontSizeX;
}
if (y > kHandoverHeader->f_GOP.f_Height) {
y = kFontSizeY;
FBDrawInRegion(fb_get_clear_clr(), FB::FBAccessibilty::Height(), FB::FBAccessibilty::Width(),
0, 0);
}
++index;
}
Detail::kState = kStateReady;
#endif // __DEBUG__
}
EXTERN_C void ke_io_read(IDeviceObject<const Char*>*, const Char* bytes) {
NE_UNUSED(bytes);
#ifdef __DEBUG__
Detail::hal_serial_init<Detail::kPort>();
if (!bytes || Detail::kState != kStateReady) return;
Detail::kState = kStateTransmit;
SizeT index = 0;
///! TODO: Look on how to wait for the UART to complete.
while (true) {
auto in = HAL::rt_in8(Detail::kPort);
///! If enter pressed then break.
if (in == 0xD) {
break;
}
if (in < '0' || in < 'A' || in < 'a') {
if (in != '@' || in != '!' || in != '?' || in != '.' || in != '/' || in != ':') {
continue;
}
}
((char*) bytes)[index] = in;
++index;
}
((char*) bytes)[index] = 0;
Detail::kState = kStateReady;
#endif // __DEBUG__
}
TerminalDevice TerminalDevice::The() noexcept {
TerminalDevice out(Kernel::ke_io_write, Kernel::ke_io_read);
return out;
}
Utf8TerminalDevice::~Utf8TerminalDevice() = default;
Utf8TerminalDevice Utf8TerminalDevice::The() noexcept {
Utf8TerminalDevice out(Kernel::ke_utf_io_write,
[](IDeviceObject<const Utf8Char*>*, const Utf8Char*) -> Void {});
return out;
}
} // namespace Kernel
|