rustyfit 0.10.0

The #![no_std] Rust implementation of The Flexible and Interoperable Data Transfer (FIT) Protocol for decoding and encoding Garmin FIT files, supporting FIT Protocol V2.
Documentation
// Code generated by fitgen/main.go. DO NOT EDIT.

// Copyright 2025 The RustyFIT Authors. All rights reserved.
// Use of this source code is governed by a BSD-style
// license that can be found in the LICENSE file.

use crate::profile::typedef::{self, FitBaseType};
use crate::proto::*;
use alloc::vec::Vec;
#[cfg(feature = "serde")]
use serde::{Deserialize, Serialize, Serializer, ser::SerializeStruct};

/// Monitoring Info message.
#[cfg_attr(feature = "serde", derive(Deserialize), serde(from = "De"))]
#[derive(Debug, Clone)]
pub struct MonitoringInfo {
    /// Units: s
    pub timestamp: typedef::DateTime,
    /// Units: s; Use to convert activity timestamps to local time if device does not support time zone and daylight savings time correction.
    pub local_timestamp: typedef::LocalDateTime,
    pub activity_type: Vec<typedef::ActivityType>,
    /// Scale: 5000; Units: m/cycle; Indexed by activity_type
    pub cycles_to_distance: Vec<u16>,
    /// Scale: 5000; Units: kcal/cycle; Indexed by activity_type
    pub cycles_to_calories: Vec<u16>,
    /// Units: kcal / day
    pub resting_metabolic_rate: u16,
    /// unknown_fields are fields that are exist but they are not defined in Profile.xlsx
    pub unknown_fields: Vec<Field>,
    /// developer_fields are custom data fields (Added since protocol version 2.0)
    pub developer_fields: Vec<DeveloperField>,
}

impl MonitoringInfo {
    /// Value's type: `u32`; FitBaseType::UINT32; ProfileType::DateTime; Units: `s`
    pub const TIMESTAMP: u8 = 253;
    /// Value's type: `u32`; FitBaseType::UINT32; ProfileType::LocalDateTime; Units: `s`
    pub const LOCAL_TIMESTAMP: u8 = 0;
    /// Value's type: `Vec<u8>`; FitBaseType::ENUM; ProfileType::ActivityType
    pub const ACTIVITY_TYPE: u8 = 1;
    /// Value's type: `Vec<u16>`; FitBaseType::UINT16; ProfileType::Uint16; Scale: `5000`; Units: `m/cycle`
    pub const CYCLES_TO_DISTANCE: u8 = 3;
    /// Value's type: `Vec<u16>`; FitBaseType::UINT16; ProfileType::Uint16; Scale: `5000`; Units: `kcal/cycle`
    pub const CYCLES_TO_CALORIES: u8 = 4;
    /// Value's type: `u16`; FitBaseType::UINT16; ProfileType::Uint16; Units: `kcal / day`
    pub const RESTING_METABOLIC_RATE: u8 = 5;

    /// Create new MonitoringInfo with all fields being set to its corresponding invalid value.
    pub const fn new() -> Self {
        Self {
            timestamp: typedef::DateTime(u32::MAX),
            local_timestamp: typedef::LocalDateTime(u32::MAX),
            activity_type: Vec::new(),
            cycles_to_distance: Vec::new(),
            cycles_to_calories: Vec::new(),
            resting_metabolic_rate: u16::MAX,
            unknown_fields: Vec::new(),
            developer_fields: Vec::new(),
        }
    }

    /// Returns `cycles_to_distance` in its scaled value. It returns `None` when value is invalid.
    ///
    /// Units: m/cycle
    pub fn cycles_to_distance_scaled(&self) -> Option<Vec<f64>> {
        if self.cycles_to_distance.is_empty() {
            return None;
        }
        let mut v = Vec::with_capacity(self.cycles_to_distance.len());
        for &x in &self.cycles_to_distance {
            v.push(x as f64 / 5000.0 - 0.0)
        }
        Some(v)
    }

    /// Set `cycles_to_distance` with scaled value, it will automatically be converted to its corresponding integer value.
    pub fn set_cycles_to_distance_scaled(&mut self, v: &[f64]) -> &mut Self {
        self.cycles_to_distance = Vec::with_capacity(v.len());
        if v.is_empty() {
            return self;
        }
        for &x in v {
            let unscaled = (x + 0.0) * 5000.0;
            if unscaled.is_nan() || unscaled.is_infinite() || unscaled > u16::MAX as f64 {
                self.cycles_to_distance.push(u16::MAX);
                continue;
            }
            self.cycles_to_distance.push(unscaled as u16);
        }
        self
    }

    /// Returns `cycles_to_calories` in its scaled value. It returns `None` when value is invalid.
    ///
    /// Units: kcal/cycle
    pub fn cycles_to_calories_scaled(&self) -> Option<Vec<f64>> {
        if self.cycles_to_calories.is_empty() {
            return None;
        }
        let mut v = Vec::with_capacity(self.cycles_to_calories.len());
        for &x in &self.cycles_to_calories {
            v.push(x as f64 / 5000.0 - 0.0)
        }
        Some(v)
    }

    /// Set `cycles_to_calories` with scaled value, it will automatically be converted to its corresponding integer value.
    pub fn set_cycles_to_calories_scaled(&mut self, v: &[f64]) -> &mut Self {
        self.cycles_to_calories = Vec::with_capacity(v.len());
        if v.is_empty() {
            return self;
        }
        for &x in v {
            let unscaled = (x + 0.0) * 5000.0;
            if unscaled.is_nan() || unscaled.is_infinite() || unscaled > u16::MAX as f64 {
                self.cycles_to_calories.push(u16::MAX);
                continue;
            }
            self.cycles_to_calories.push(unscaled as u16);
        }
        self
    }

    fn count_valid_fields(&self) -> usize {
        (self.timestamp.0 != u32::MAX) as usize
            + (self.local_timestamp.0 != u32::MAX) as usize
            + (!self.activity_type.is_empty()) as usize
            + (!self.cycles_to_distance.is_empty()) as usize
            + (!self.cycles_to_calories.is_empty()) as usize
            + (self.resting_metabolic_rate != u16::MAX) as usize
    }
}

impl Default for MonitoringInfo {
    fn default() -> Self {
        Self::new()
    }
}

impl From<&Message> for MonitoringInfo {
    /// from creates new MonitoringInfo struct based on given mesg.
    fn from(mesg: &Message) -> Self {
        const KNOWN_NUMS: [u64; 4] = [59, 0, 0, 2305843009213693952];
        let mut n = 0u64;
        for field in &mesg.fields {
            n += (KNOWN_NUMS[field.num as usize >> 6] >> (field.num & 63)) & 1 ^ 1
        }

        let mut v = Self::new();
        v.unknown_fields = Vec::<Field>::with_capacity(n as usize);
        v.developer_fields = mesg.developer_fields.clone();

        for field in &mesg.fields {
            match field.num {
                253 => v.timestamp = typedef::DateTime(field.value.as_u32()),
                0 => v.local_timestamp = typedef::LocalDateTime(field.value.as_u32()),
                1 => {
                    v.activity_type = match &field.value {
                        Value::VecUint8(v) => {
                            let mut vs = Vec::with_capacity(v.len());
                            vs.extend(v.iter().map(|&x| typedef::ActivityType(x)));
                            vs
                        }
                        _ => Vec::new(),
                    }
                }
                3 => v.cycles_to_distance = field.value.to_vec_u16(),
                4 => v.cycles_to_calories = field.value.to_vec_u16(),
                5 => v.resting_metabolic_rate = field.value.as_u16(),
                _ => v.unknown_fields.push(field.clone()),
            };
        }

        v
    }
}

impl From<MonitoringInfo> for Message {
    fn from(m: MonitoringInfo) -> Self {
        let mut fields =
            Vec::<Field>::with_capacity(m.count_valid_fields() + m.unknown_fields.len());

        if m.timestamp.0 != u32::MAX {
            fields.push(Field {
                num: 253,
                base_type: FitBaseType::UINT32,
                value: Value::Uint32(m.timestamp.0),
                is_expanded: false,
            });
        };
        if m.local_timestamp.0 != u32::MAX {
            fields.push(Field {
                num: 0,
                base_type: FitBaseType::UINT32,
                value: Value::Uint32(m.local_timestamp.0),
                is_expanded: false,
            });
        };
        if !m.activity_type.is_empty() {
            fields.push(Field {
                num: 1,
                base_type: FitBaseType::ENUM,
                value: Value::VecUint8({
                    let (ptr, len, capacity) = m.activity_type.into_raw_parts();
                    unsafe { Vec::from_raw_parts(ptr.cast::<u8>(), len, capacity) }
                }),
                is_expanded: false,
            });
        };
        if !m.cycles_to_distance.is_empty() {
            fields.push(Field {
                num: 3,
                base_type: FitBaseType::UINT16,
                value: Value::VecUint16(m.cycles_to_distance),
                is_expanded: false,
            });
        };
        if !m.cycles_to_calories.is_empty() {
            fields.push(Field {
                num: 4,
                base_type: FitBaseType::UINT16,
                value: Value::VecUint16(m.cycles_to_calories),
                is_expanded: false,
            });
        };
        if m.resting_metabolic_rate != u16::MAX {
            fields.push(Field {
                num: 5,
                base_type: FitBaseType::UINT16,
                value: Value::Uint16(m.resting_metabolic_rate),
                is_expanded: false,
            });
        };

        fields.extend_from_slice(&m.unknown_fields);

        Self {
            header: 0,
            num: typedef::MesgNum::MONITORING_INFO,
            fields,
            developer_fields: m.developer_fields,
        }
    }
}

#[cfg(feature = "serde")]
impl Serialize for MonitoringInfo {
    fn serialize<S>(&self, serializer: S) -> Result<S::Ok, S::Error>
    where
        S: Serializer,
    {
        let n = self.count_valid_fields() + 2;
        let mut state = serializer.serialize_struct("MonitoringInfo", n)?;
        if let Some(v) = self.timestamp.unix_timestamp() {
            state.serialize_field("timestamp", &v)?;
        }
        if let Some(v) = self.local_timestamp.unix_timestamp() {
            state.serialize_field("local_timestamp", &v)?;
        }
        if !self.activity_type.is_empty() {
            state.serialize_field("activity_type", &self.activity_type)?;
        }
        if let Some(v) = self.cycles_to_distance_scaled() {
            state.serialize_field("cycles_to_distance", &v)?;
        }
        if let Some(v) = self.cycles_to_calories_scaled() {
            state.serialize_field("cycles_to_calories", &v)?;
        }
        if self.resting_metabolic_rate != u16::MAX {
            state.serialize_field("resting_metabolic_rate", &self.resting_metabolic_rate)?;
        }
        if !self.unknown_fields.is_empty() {
            state.serialize_field("unknown_fields", &self.unknown_fields)?;
        }
        if !self.developer_fields.is_empty() {
            state.serialize_field("developer_fields", &self.developer_fields)?;
        }
        state.end()
    }
}

#[cfg(feature = "serde")]
#[cfg_attr(feature = "serde", derive(Deserialize), serde(default))]
struct De {
    timestamp: Option<i64>,
    local_timestamp: Option<i64>,
    activity_type: Vec<typedef::ActivityType>,
    cycles_to_distance: Vec<f64>,
    cycles_to_calories: Vec<f64>,
    resting_metabolic_rate: u16,
    unknown_fields: Vec<Field>,
    developer_fields: Vec<DeveloperField>,
}

#[cfg(feature = "serde")]
impl From<De> for MonitoringInfo {
    fn from(m: De) -> Self {
        Self {
            timestamp: m.timestamp.map_or_else(
                || typedef::DateTime(u32::MAX),
                typedef::DateTime::from_unix_timestamp,
            ),
            local_timestamp: m.local_timestamp.map_or_else(
                || typedef::LocalDateTime(u32::MAX),
                typedef::LocalDateTime::from_unix_timestamp,
            ),
            activity_type: m.activity_type,
            cycles_to_distance: {
                if m.cycles_to_distance.is_empty() {
                    Vec::new()
                } else {
                    let mut vals = Vec::with_capacity(m.cycles_to_distance.len());
                    for &x in m.cycles_to_distance.iter() {
                        let unscaled = (x + 0.0) * 5000.0;
                        if unscaled.is_nan() || unscaled.is_infinite() || unscaled > u16::MAX as f64
                        {
                            vals.push(u16::MAX);
                            continue;
                        }
                        vals.push(unscaled as u16);
                    }
                    vals
                }
            },
            cycles_to_calories: {
                if m.cycles_to_calories.is_empty() {
                    Vec::new()
                } else {
                    let mut vals = Vec::with_capacity(m.cycles_to_calories.len());
                    for &x in m.cycles_to_calories.iter() {
                        let unscaled = (x + 0.0) * 5000.0;
                        if unscaled.is_nan() || unscaled.is_infinite() || unscaled > u16::MAX as f64
                        {
                            vals.push(u16::MAX);
                            continue;
                        }
                        vals.push(unscaled as u16);
                    }
                    vals
                }
            },
            resting_metabolic_rate: m.resting_metabolic_rate,
            unknown_fields: m.unknown_fields,
            developer_fields: m.developer_fields,
        }
    }
}

#[cfg(feature = "serde")]
impl Default for De {
    fn default() -> Self {
        Self {
            timestamp: None,
            local_timestamp: None,
            activity_type: Vec::new(),
            cycles_to_distance: Vec::new(),
            cycles_to_calories: Vec::new(),
            resting_metabolic_rate: u16::MAX,
            unknown_fields: Vec::new(),
            developer_fields: Vec::new(),
        }
    }
}