Research note 04

Feed intake is the obvious signal.It is the one that failed in the house.

August 2026Feed intake7 min read

Birds go off feed before they die. That is true, and it is not the same thing as a working alarm. The strongest published feed result comes from experimental pens with individual feeders. The one commercial broiler test could not establish a threshold at all.

Ask a grower what tells them something is wrong and feed comes up quickly. Birds off feed is the oldest observation in the business, it precedes almost everything else, and it fits the way a house is walked. It is also the variable that has performed worst in the one attempt we can find to build a commercial broiler alarm on it. This note sets out both halves of that, because the gap between them is the whole practical question, and because it runs against the version of the story that is easier to sell.

Why feed is the intuitive choice

The physiology is not in dispute. A bird under challenge reduces intake before it shows a clinical sign, and it reduces intake before it dies. Regulators encode this. The EU Annex II early-detection criteria trigger on a feed or water intake drop of more than 20 percent, alongside a mortality rise above 3 percent per week. The Dutch national scheme requires veterinary consultation on a 5 percent or greater reduction in feed or water per day over two days, in parallel with a mortality rule of 0.5 percent per day for two consecutive days in broilers older than ten days.

So the belief that feed carries signal is not folklore. It is written into statutory detection criteria in two jurisdictions. The question a product has to answer is narrower and harder: how often does acting on that signal put a grower in the right house, and how often does it waste the trip.

The 17-day result, and what it was measured on

The strongest positive finding for feed intake is Alves et al. 2024, in Computers and Electronics in Agriculture. Across 95,711 pure-line broilers in 146 trials run between 2017 and 2022 in Oklahoma, daily feed intake diverged 17 days before the mortality event, at p of 0.0028 or better. The behavioural traits moved in a readable sequence: time spent feeding at seven days out, meal length at eight, inter-meal interval and feeding rate at ten, visit-average intake at fifteen, number of visits to the feeder at seventeen.

That is a real, peer-reviewed, well-powered result and it deserves to be taken seriously. It was also produced in experimental pens using RFID individual feeders, one bird at a time. The best classifier in that study reached specificity of 0.952 with sensitivity of 0.643, which is to say it missed roughly a third of events even under those conditions. The authors themselves ask for feasibility and cost-effectiveness research in commercial settings. Individual-bird feeding behaviour and house-level bin draw-down are not the same measurement, and treating a 17-day lead from the first as evidence about the second is the single most common overreach we see quoted from this literature.

The commercial null result

The counterweight is a 2023 bioRxiv preprint, which we label a preprint every time we cite it. Gonzales and colleagues took production charts from eight commercial Dutch broiler farms with nine infected sheds, flock sizes from 15,000 to 63,000 birds, during H5N1 and H5N8 episodes, and tested mortality, feed and water on the same data with the same method. Their sentence on feed and water is short. Reliable thresholds for food or water intake could not be established.

Same farms, same method, three input variables
VariableInfected sheds detectedFalse alarms per 100 production days
Daily mortality above 0.17%9 of 92.0
Water intake below 1.7 mL9 of 916.2
Feed intake below 3.3 g9 of 937.2
Source: Gonzales et al. 2023, preprint, eight commercial Dutch broiler farms.

Feed was sensitive. It caught every infected shed. It also raised 37.2 false alarms per 100 production days, which is more than one wrong answer every three days on a single house. Mortality on the same charts caught the same nine sheds at 2.0, with one to five days of lead over actual detection. Sensitivity was never the constraint. Specificity was.

Feed intake caught every infected shed and was still unusable. An alarm that is right about the flock and wrong about the day is not an alarm.

The duck evidence, at its correct weight

There is a peer-reviewed result that points the other way, and it should be reported. In Pathogens in 2021, the same research group examined 53 non-infected and 13 infected commercial duck flocks across the Netherlands, Germany, the United Kingdom and the United States. Where feed and water data were available, and they were available for 38 non-infected and only six of the infected flocks, the alarms based on those production parameters were raised one to two days before the mortality alarm.

One to two days is a useful margin. It is also ducks rather than broilers, six infected flocks with the relevant data, and the thresholds the authors derived, a feed drop of 7 g per duck per day and a water drop of 14 mL per duck per day, were described as sensitive with poor specificity. That is the same trade-off the broiler preprint ran into, stated more gently.

Days before a mortality event that feeding-behaviour traits diverge, in experimental pens Horizontal bar chart of six feeding-behaviour traits. Daily feed intake diverges 17 days before the event, visit-average intake 15 days, feeding rate and inter-meal interval 10 days, meal length 8 days and time spent feeding 7 days. All values come from research pens fitted with individual RFID feeders, not from commercial houses. Daily feed intake 17 days Visit-average intake 15 days Feeding rate 10 days Inter-meal interval 10 days Meal length 8 days Time spent feeding 7 days Research pens with individual RFID feeders, not commercial broiler houses.
This is the strongest published case for feed intake as an early signal, and it was measured on individually identified birds at individual feeders. A commercial house has one bulk feed line and no bird-level resolution. Tested there, the same variable produced 37.2 false alarms per 100 production days. Alves et al. 2024

The measurement problem underneath all of it

There is a plainer obstacle that rarely gets discussed. In a January 2024 survey of Tennessee broiler producers, an unpublished MS thesis with 77 respondents from 531 contacted, a 14.5 percent response rate, 95 percent of them contract growers, 88.7 percent reported an automated feed system and 85.2 percent a water flow meter. Automated feed inventory was reported by 11.9 percent.

An automated feed system moves feed. It does not weigh what the birds ate yesterday. Getting a daily feed number requires either bin load cells, whose vendor documentation describes storing 24-hour feed usage for each of the past four days and states no accuracy specification, or in-line feed metering, which one Australian project reported as rated above 98 percent accuracy once calibrated across eight sheds. Both are new hardware on the farm. On a house with bulk deliveries and nothing else, daily feed intake is a derived and lumpy number, and a lumpy input will not fix a specificity problem.

The ratio does not rescue it

The water-to-feed ratio partly normalizes out the growth curve, which is why it gets reached for next. It does not settle the question. Breeder guidance gives 1.8 to 1 for bell drinkers and 1.6 to 1 for nipple drinkers without cups at 21 degrees Celsius. An Australian industry report gives 1.8 to 2.0 to 1 as normal. Measured commercial values in an Arkansas MS thesis ran from 1.93 at day 11 to 1.72 at day 46, with a seasonal spread from 1.724 in winter to 1.838 in summer. The direction of a disease deviation is contested as well: the Australian report treats a widening ratio above 2.0 as a possible health challenge, while a doctoral dissertation at Auburn recorded the ratio decreasing during a disease event because water fell further than feed.

We do not publish a single normal ratio, because the published sources do not agree on one and a fixed band would be wrong for most flocks on most days. What is defensible is deviation from the flock’s own trajectory.

What we do with this

Feed is in PoultraIQ Daily as a logged trend and as context for the mortality reading. It is not a trigger. Where a farm has only delivery weights, we say so on the page rather than smoothing a lumpy number into a daily line that looks more precise than it is. If a farm has in-line metering or load cells, the same trend gets read with a shorter window.

Where this leaves the 17 days

The 17-day figure is real. It is a property of individually monitored birds in research pens, and nobody has shown it survives the move to a bin, a feed line and 30,000 birds sharing them. Treat it as a statement about what the animal does, not about what the farm can see. What does transfer, on the same evidence, is duller and more useful: a daily log, taken at the same time each day, read against where that flock should be. That is the input the commercial dataset actually validated, and mortality is the column in it that worked.

Sources

References.

  1. Alves, A. et al. Feeding behaviour and mortality prediction in broilers. Computers and Electronics in Agriculture 224:109124, 2024. Peer reviewed, but experimental pens with RFID individual feeders, 95,711 pure-line broilers, 146 trials, Oklahoma. Daily feed intake diverged 17 days before the mortality event. cobbgenetics.com
  2. Gonzales, J.L. et al. Detection using production data, eight commercial Dutch broiler farms, 2023. Preprint, not peer reviewed. Feed 37.2 and water 16.2 false alarms per 100 production days against 2.0 for mortality; no reliable feed or water threshold established. biorxiv.org
  3. Gonzales, J.L. et al. Pathogens 10(11):1498, 2021. Peer reviewed, commercial duck flocks, not broilers; feed and water alarms raised one to two days before the mortality alarm; feed and water data for only six infected flocks. pmc.ncbi.nlm.nih.gov
  4. Elbers, A.R.W. and Gonzales, J.L. Mortality rise and clinical signs in outbreak investigations, Netherlands. Peer reviewed. EU Annex II criteria and Dutch national reporting thresholds. pmc.ncbi.nlm.nih.gov
  5. Sheets, C. Precision technology adoption among Tennessee broiler producers, 2024. MS thesis, not peer reviewed. n=77 of 531 contacted, 14.5% response rate. Automated feed systems 88.7%, water meters 85.2%, automated feed inventory 11.9%. trace.tennessee.edu
  6. HerdStar Inc. BinTrac bin weighing system overview, 2023. Vendor document. Stores 24-hour feed usage for each of the past four days; no accuracy specification stated. bintrac.com
  7. Wilkinson, S. Poultry CRC Final Report 2.1.19, 2016. Industry project report, not peer reviewed. In-line feed meters rated above 98% accuracy once calibrated; water-to-feed ratio of 1.8 to 2.0 to 1 described as normal. poultryhub.org
  8. Edge, C. Water and feed consumption in commercial-type broilers. Doctoral dissertation, Auburn University, not peer reviewed. Water-to-feed ratio decreased during a disease event. etd.auburn.edu
  9. McCreery, D. Water and feed consumption on commercial broiler farms, 2015. MS thesis, University of Arkansas, not peer reviewed. Day 11 ratio 1.93 to day 46 ratio 1.72; winter 1.724, summer 1.838. scholarworks.uark.edu
  10. Aviagen. Ross Broiler Pocket Guide, 2015. Breeder company guidance, not peer reviewed. Water-to-feed 1.8 to 1 bell drinkers, 1.6 to 1 nipple drinkers without cups at 21 degrees Celsius. aviagen.com

Have you seen feed move first?

If you keep bin readings or in-line feed data across a flock that broke, that record is worth more than another review paper. We would like to look at it.

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